Lubricants and methods to determine dewetting thickness thereof
11898116 ยท 2024-02-13
Assignee
Inventors
- Bala Krishna Pathem (Fremont, CA, US)
- Nicholas Ryan Conley (Apex, NC, US)
- Bruno Jean Marchon (Palo Alto, CA, US)
Cpc classification
C10N2040/18
CHEMISTRY; METALLURGY
C10N2030/06
CHEMISTRY; METALLURGY
G11B5/4826
PHYSICS
C10M107/54
CHEMISTRY; METALLURGY
G11B5/4866
PHYSICS
C10N2020/04
CHEMISTRY; METALLURGY
G11B2005/0021
PHYSICS
International classification
C08G65/00
CHEMISTRY; METALLURGY
Abstract
A lubricant including a plurality of segments including a divalent center segment and two sidechain segments, each including a perfluoroalkyl ether moieties is provided in which a dewetting thickness of the lubricant may be determined based in-part on a segment weight average molecular weight of the segments. A magnetic recording medium and a magnetic data storage system including the lubricant are also provided.
Claims
1. A lubricant comprising: a plurality of segments, each linked together by ether linkages according to a general formula:
Re1-Rb1-Ri-Rc-Ri-Rb2-Re2; wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety; wherein each of Rb1 and Rb2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety; wherein each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; wherein each of Re1 and Re2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements; wherein Rb1RcRb2; and wherein the lubricant has a bonding percentage of about 70% to about 100% corresponding to a total area of a surface on which the lubricant is located.
2. The lubricant of claim 1, wherein the bonding percentage is about 75% to about 100%, and an average thickness of a layer of the lubricant on the surface is about 0.3 nanometers to about 3 nanometers.
3. The lubricant of claim 1, wherein the bonding percentage is about 80% to about 100%, and an average thickness of a layer of the lubricant on the surface is about 0.3 nanometers to about 3 nanometers.
4. The lubricant of claim 1, wherein the bonding percentage is about 85% to about 100%, and an average thickness of a layer of the lubricant on the surface is about 0.3 nanometer to about 3 nanometers.
5. The lubricant of claim 1, wherein the lubricant has a segment weight average molecular weight () determined according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3; and wherein a dewetting thickness of the lubricant, T.sub.dw, is determined according to the formula:
T.sub.dw= (); wherein is a function determined from a relationship between a dewetting thickness and a segment weight average molecular weight of a plurality of other lubricants; wherein each of the plurality of other lubricants includes one or more segments including perfluoroalkyl ether moieties; wherein the segment weight average molecular weight of each of the plurality of other lubricants is equal to a weight average molecular weight of the one or more segments including perfluoroalkyl ether moieties present in the respective other lubricant; and wherein the segment weight average molecular weight of each of the plurality of other lubricants is about 300 grams/mole (g/mol) to about 5,000 g/mol.
6. The lubricant of claim 1, wherein each functional group is OH; or wherein each functional group includes: a saturated C.sub.1-C.sub.20 radical, an unsaturated C.sub.1-C.sub.20 radical, an alicyclic C.sub.3-C.sub.20 radical, a heterocyclic C.sub.3-C.sub.20 radical, an aromatic C.sub.5-C.sub.20 radical, a heteroaromatic C.sub.5-C.sub.20 radical, a cyclotriphosphazine radical, a halogen, NR.sub.2, NR*COR*,OR*,OCOR*, COOR*, SeR*, TeR*, PR*.sub.2, PO(OR*).sub.2, OPO(OR*).sub.2, NP(NR*.sub.2).sub.3, AsR*.sub.2, SR*, SO.sub.2(OR*).sub.2, SiR*.sub.3, (CH.sub.2)q-SiR*.sub.3, (CF.sub.2)q-SiR*.sub.3, or a combination thereof, wherein q is 1 to 10 and each R* is, independently, a hydrogen, a halogen, a saturated, unsaturated, aromatic, and/or heterocyclic C.sub.1-C.sub.20 radical, and wherein two or more R* may join together to form a ring structure, and wherein at least one functional group is selected to be attachable to a protective overcoat of a magnetic recording media comprising the lubricant.
7. The lubricant of claim 1, wherein a weight average molecular weight is from about 1 to about 20 kiloDaltons (kDa) and a polydispersity is about 1 to about 2.
8. The lubricant of claim 1, wherein: Rc includes a perfluoroethyl ether moiety; each of Rb.sup.1 and Rb.sup.2 includes a perfluoroethyl ether moiety; each Ri has the general formula: ##STR00016## Re.sup.1 has the general formula: ##STR00017## and Re.sup.2 has the general formula: ##STR00018## wherein each R.sup.1 is, independently, a functional group including elements from Group 13-17 of the periodic table of the elements, and Rc is of the formula: ##STR00019## Rb.sup.1 is of the formula: ##STR00020## and Rb.sup.2 is of the formula: ##STR00021## and wherein each of x, y.sup.1 and y.sup.2 is, independently, an integer from 1 to 10.
9. The lubricant of claim 8, wherein x is less than y.sup.1 and x is less than y.sup.2; or wherein x is greater than y.sup.1 and x is greater than y.sup.2.
10. The lubricant of claim 8, wherein y.sup.1y.sup.2.
11. The lubricant of claim 8, wherein each R.sup.1 is a hydroxyl (OH).
12. The lubricant of claim 1, having the formula: ##STR00022## wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10; and wherein y.sup.1xy.sup.2.
13. The lubricant of claim 12, wherein a dewetting thickness T.sub.dw=0.0045()+8.0226; and wherein =(116.015*y.sup.1+116.015*y.sup.2+116.015*x)3.
14. A data storage system, comprising: at least one magnetic head; a magnetic recording medium including a lubricant according to claim 1; a drive mechanism for positioning the at least one magnetic head over the magnetic recording medium; and a controller electrically coupled to the at least one magnetic head for controlling operation of the at least one magnetic head.
15. A data storage system, comprising: a slider comprising at least one magnetic head and an air bearing surface, wherein a lubricant according to claim 1 is disposed on the air bearing surface; and a magnetic recording medium including a magnetic recording layer; wherein the slider is configured to write information to the magnetic recording layer using heat assisted magnetic recording.
16. The data storage system of claim 15, wherein an average thickness of a layer of the lubricant on the surface is about 0.3 nanometers to about 3 nanometers.
17. A lubricant comprising a plurality of segments linked together by ether linkages according to a formula: ##STR00023## wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10; wherein y.sup.1xy.sup.2; and wherein the lubricant has a bonding percentage of about 70% to less than about 100% corresponding to a total area of a surface on which the lubricant is located.
18. The lubricant of claim 17, comprising a weight average molecular weight from about 1 to about 20 kiloDaltons (kDa) and a polydispersity from about 1 to about 2, and an average thickness of a layer of the lubricant on the surface is about 0.3 nanometers to about 3 nanometers.
19. A method to determine a dewetting thickness of a lubricant, comprising: (a) generating a chemical representation of the lubricant including a plurality of segments, each linked together through an ether linkage according to a general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2; wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety; wherein each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety; wherein each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; wherein each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and wherein Rb.sup.1RcRb.sup.2; wherein the lubricant has a bonding percentage of about 70% to about 100% corresponding to a total area of a surface on which the lubricant is located; (b) determining a segment weight average molecular weight () according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3; and (c) determining the dewetting thickness, T.sub.dw, of the lubricant according to the formula:
T.sub.dw=0.0045()+8.0226.
20. The method of claim 19, wherein the lubricant comprises a compound with the formula: ##STR00024## wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10; wherein y.sup.1xy.sup.2; wherein x is less than y.sup.1; wherein and x is less than y.sup.2; wherein y.sup.1y.sup.2; and wherein =(116.015*y.sup.1+116.015*y.sup.2+116.015*x)3.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(9) Dewetting thickness of lubricants utilized on magnetic recording media is known to affect a variety of properties of the lubricant layer including the average thickness of the lubricant layer, the siloxane contamination robustness of the media provided by the lubricant, the head wear characteristics of a data storage system including magnetic recording media having the lubricant, and a number of other properties. The dewetting thickness of lubricants was previously determined experimentally. In one aspect, this disclosure relates to a lubricant in which a dewetting thickness T.sub.dw of the lubricant may be determined according to a formula, which relates dewetting thickness to a segment weight average molecular weight of the lubricant. The dewetting thickness formula may be determined from a relationship between dewetting thickness data of other previously known lubricants and the segment weight average molecular weight of these known lubricants. In one aspect, the T.sub.dw of the lubricant may be determined by a linear fit of dewetting thickness to a segment weight average molecular weight of the other lubricants. In one aspect, this disclosure involves a method to determine a dewetting thickness of a lubricant that includes the steps of (1) providing a representation of the lubricant, e.g., the chemical formula of a proposed or possible lubricant, (2) determining the segment weight average molecular weight of this lubricant from the chemical formula, followed by (3) determining the dewetting thickness of the lubricant according to the dewetting thickness formula. In turn, a lubricant may be designed and/or selected according to its structure to possess a dewetting thickness within a particular range. This may be done instead of having to produce multiple lubricants and determine by trial and error which is suitable for a particular purpose as is common in the art. The ability to predict a dewetting thickness may be particularly useful in developing or improving HAMR media or HAMR storage systems due to the high temperatures and other challenges associated with such media and systems.
(10) Definitions
(11) For purposes herein, and the claims thereto, the new numbering scheme for the Periodic Table Groups is used as described in Chemical and Engineering News, 63(5), pg. 27 (1985). Therefore, a group 4 metal is an element from group 4 of the Periodic Table, e.g. Hf, Ti, or Zr. For purposes herein, molecular weight refers to weight average molecular weight (Mw) and is expressed as grams per mole (g/mol) unless otherwise specified.
(12) As used herein, and unless otherwise specified, the term C.sub.n means hydrocarbon(s) having n carbon atom(s) per molecule, where n is a positive integer. Likewise, a C.sub.m-C.sub.y group or compound refers to a group or compound comprising carbon atoms at a total number thereof in the range from m to y. Thus, a C.sub.1-C.sub.4 alkyl group refers to an alkyl group that includes carbon atoms at a total number thereof in the range of 1 to 4, e.g., 1, 2, 3 and 4.
(13) The term moiety refers to one or more covalently bonded atoms which form a part of a molecule. The terms group, radical, moiety, and substituent may be used interchangeably.
(14) The terms hydrocarbyl radical, hydrocarbyl group, or hydrocarbyl may be used interchangeably and are defined to mean a group consisting of hydrogen and carbon atoms only. Preferred hydrocarbyls are C.sub.1-C.sub.20 radicals that may be linear, branched, or cyclic, and when cyclic, aromatic or non-aromatic. Examples of such radicals include, but are not limited to, alkyl groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, pentyl, iso-amyl, hexyl, octyl cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cyclooctyl, and the like, aryl groups, such as phenyl, benzyl naphthyl, and the like.
(15) For purposes herein, a heteroatom is any non-carbon atom, selected from groups 13 through 17 of the periodic table of the elements. In one or more aspects, heteroatoms are non-metallic atoms selected from B, N, O, Si, P, S, As Se, Te and the halogens F, Cl, Br, I, and At.
(16) Unless otherwise indicated, the term substituted means that at least one hydrogen atom has been replaced with at least one non-hydrogen atom or a functional group.
(17) For purposes herein, a functional group includes one or more of a hydrocarbyl group, a heteroatom, or a heteroatom containing group, such as halogen (such as Br, Cl, F or I) or at least one functional group such as NR*.sub.2, NR*COR*,OR*,*OCOR*, COOR*, SeR*, TeR*, PR*.sub.2, PO(OR*).sub.2, OPO(OR*).sub.2, AsR*.sub.2, SbR*.sub.2, SR*, SO.sub.2(OR*).sub.2, BR*.sub.2, SiR*.sub.3, (CH.sub.2)q-SiR*.sub.3, or a combination thereof, where q is 1 to 10 and each R* is independently hydrogen, a hydrocarbyl or halocarbyl radical, and two or more R* may join together to form a substituted or unsubstituted completely saturated, partially unsaturated, or aromatic cyclic or polycyclic ring structure, or where at least one heteroatom has been inserted within a hydrocarbyl ring.
(18) In one or more aspects, functional groups may include: a saturated C.sub.1-C.sub.20 radical, an unsaturated C.sub.1-C.sub.20 radical, an alicyclic C.sub.3-C.sub.20 radical, a heterocyclic C.sub.3-C.sub.20 radical, an aromatic C.sub.5-C.sub.20 radical, a heteroaromatic C.sub.5-C.sub.20 radical, a cyclotriphosphazine radical, a halogen, NR*.sub.2, NR*COR*,OR*,OCOR*, COOR*, SeR*, TeR*, PR*.sub.2, PO(OR*).sub.2, OPO(OR*).sub.2, NP(NR*.sub.2).sub.3, AsR*.sub.2, SR*, SO.sub.2(OR*).sub.2, BR*.sub.2, SiR*.sub.3, (CH.sub.2)q-SiR*.sub.3, (CF.sub.2)q-SiR*.sub.3, or a combination thereof, wherein q is 1 to 10 and each R* is, independently a hydrogen, a halogen, a saturated, unsaturated, aromatic, and/or heterocyclic C.sub.1-C.sub.20 radical.
(19) For purposes herein, a functional group, which is attachable to a surface of a magnetic recording medium, refers to functional groups having increased affinity for that surface relative to the affinity of perfluoroalkyl ethers to that same surface. Increased affinity may include Van der Walls forces, weak London Dispersion forces, dipole-dipole forces, and/or the like, and/or one or more types of bonds and/or dative bonds with the surface of the magnetic recording media, preferably with a protective overcoat of a recording media. In one or more aspects, a functional group which is attachable to a surface of a magnetic recording medium refers to functional groups having increased affinity for the carbon overcoat (COC) layer of the magnetic recording media, relative to the affinity of perfluoroalkyl ethers to that same surface.
(20) A heterocyclic ring, also referred to herein as a heterocyclic radical, is a ring having a heteroatom in the ring structure as opposed to a heteroatom substituted ring where a hydrogen on a ring atom is replaced with a heteroatom. For example, tetrahydrofuran is a heterocyclic ring and 4-N,N-dimethylamino-phenyl is a heteroatom substituted ring. A substituted heterocyclic ring is a heterocyclic ring where a hydrogen of one of the ring atoms is substituted, e.g., replaced with a hydrocarbyl, or a heteroatom containing group.
(21) A compound refers to a substance formed by the chemical bonding of a plurality chemical elements. A derivative refers to a compound in which one or more of the atoms or functional groups of a precursor compound have been replaced by another atom or functional group, generally by means of a chemical reaction having one or more steps.
(22) For purposes herein, unless otherwise specified, the lubricants include a plurality of segments and each segment is attached to the other segment by an ether bond, e.g., a COC linkage. For purposes herein, a segment including a perfluoropolyalkyl ether moiety has the general formula:
(CF.sub.2).sub.aO;
wherein each a is from 1 to 10. A segment including a perfluoroalkyl ether moiety has the general formula:
((CF.sub.2).sub.aO).sub.b;
wherein each a is from 1 to 10 and b is the number of repeating units in the segment.
(23) The perfluoroalkyl ether moieties present in a particular segment are bonded together to form a perfluoropolyalkyl ether chain. Unless indicated otherwise, each of the perfluoroalkyl ether moieties present in a perfluoropolyalkyl ether segment may be the same or different. For example, the following are each examples of a perfluoropolyalkyl ether segments:
(24) i) (CF.sub.2CF.sub.2O).sub.b, a perfluoropolyethylether segment;
(25) ii) (CF.sub.2CF.sub.2CF.sub.2O).sub.b, a perfluoropolypropylether segment;
(26) iii) (CF.sub.2CF.sub.2CF.sub.2CF.sub.2O).sub.b, a perfluoropolybutylether segment; and
(27) iv) (CF.sub.2CF.sub.2O).sub.b(CF.sub.2O).sub.b, a perfluoropolyethylether-perfluoropolymethylether segment, also referred to in the art as a Z-chain segment.
(28) For purposes herein, the molecular weight of a segment, e.g., a divalent center segment including a perfluoroalkyl ether moiety Rc and/or a divalent sidechain segment including a perfluoroalkyl ether moiety Rb.sup.1 and Rb.sup.2 is defined as the molecular weight of the perfluoroalkyl ether moieties present in the segment.
(29) Unless otherwise indicated, a divalent center segment, abbreviated Rc herein, refers to a divalent chemical moiety including a perfluoroalkyl ether moiety, or which is formed from one or more perfluoroalkyl ether moieties, that is chemically bonded via an ether linkage to a linking segment moieties on either side.
(30) An intermediate or linking segment, abbreviated as Ri herein, refers to a chemical moiety bonded between the center segment and a sidechain segment by an ether linkage, and which includes at least one functional group, which is preferably selected to attached to the protective layer of the magnetic recording media.
(31) A side chain segment, abbreviated Rb herein, refers to a divalent chemical moiety including a perfluoroalkyl ether moiety, or formed from one or more perfluoroalkyl ether moieties, that is chemically bonded via an ether linkage to a linking segment moiety and an end segment.
(32) An end segment, abbreviated Re herein, refers to a mono-valent radical which includes at least one functional group preferably selected to attached to the protective layer of the magnetic recording media. The end moieties are located at either end of a sidechain of the lubricant molecule.
(33) For any particular compound disclosed herein, any general or specific structure presented also encompasses all conformational isomers, regio-isomers, and stereoisomers that may arise from a particular set of substituents, unless stated otherwise. Similarly, unless stated otherwise, the general or specific structure also encompasses all enantiomers, diastereomers, and other optical isomers whether in enantiomeric or racemic forms, as well as mixtures of stereoisomers, as would be recognized by a skilled artisan.
(34) As used herein, the term aromatic also refers to pseudoaromatic heterocycles which are heterocyclic substituents that have similar properties and structures (nearly planar) to aromatic heterocyclic ligands, but are not by definition aromatic; likewise the term aromatic also refers to substituted aromatics.
(35) As used herein, a moiety which is chemically identical to another moiety is defined as being identical in overall composition exclusive of isotopic abundance and/or distribution, and/or exclusive of stereochemical arrangement such as optical isomers, confirmational isomers, spatial isomers, and/or the like.
(36) Data Storage Device
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(39) In operation, the laser 114 is configured to generate and direct light energy to a waveguide (e.g., along the dashed line) in the slider which directs the light to a near field transducer (NFT) near the air bearing surface (e.g., bottom surface) 108c of the slider 108. Upon receiving the light from the laser 114 via the waveguide, the NFT generates localized heat energy that heats a portion of the media 102 within or near the write element 108a, and near the read element 108b. The anticipated recording temperature is in the range of about 350 C. to 400 C. In the aspect illustrated in
(40) Magnetic Recording Medium
(41)
(42) Lubricants
(43) In one aspect, lubricants according to aspects disclosed herein may function as boundary lubricants which may be used in various mechanical devices, including data storage systems configured for magnetic recording (e.g., hard disk drives or tape drives) and other microelectronic mechanical systems. Boundary lubricants may form a lubricant layer when one or more functional groups of the lubricant attach or otherwise engage with the surface being lubricated. For instance, one or more boundary lubricants may form a lubricant layer 216 on a magnetic recording medium 200 (e.g. a disk that includes a magnetic recording layer 210) that moves relative to other parts in the mechanical device. This lubricant layer 216 may help to protect the magnetic recording medium from frictional wear and/or damage caused by interactions between the magnetic recording medium and other parts in the mechanical device (e.g., interactions, such as contact, between a slider and the magnetic recording medium). In other words, this boundary layer may help limit or minimize solid-to-solid contact.
(44)
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
wherein Rc is a divalent center segment 302 including a perfluoroalkyl ether moiety; Rb.sup.1 is a first sidechain segment 306, Rb.sup.2 is a second sidechain segment 306, each independently includes a perfluoroalkyl ether moiety; each Ri segment is, independently, a divalent linking segment 304 including a functional group including elements from Group 13-17 of the periodic table of the elements, which in this aspect are hydroxyl groups (OH). Re.sup.1 is a first end segment 308 and Re.sup.2 is second end segment 308, each is a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements, which in this aspect are hydroxyl groups (OH). As shown in
(45) In the aspect shown in
(46)
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
wherein Rc is a divalent center segment 312 including a perfluoroalkyl ether moiety; Rb.sup.1 is a first sidechain segment 316, Rb.sup.2 is a second sidechain segment 316, each independently includes a perfluoroalkyl ether moiety; each Ri segment is, independently, a divalent linking segment 314 including a functional group including elements from Group 13-17 of the periodic table of the elements, which in this aspect are hydroxyl groups (OH). Re.sup.1 is a first end segment 318 and Re.sup.2 is second end segment 318, each is a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements, which in this aspect are hydroxyl groups (OH). In this aspect of the disclosure, Rb.sup.1RcRb.sup.2, and Rb.sup.1=Rb.sup.2.
(47) In the aspect shown in
(48) Method to Determine Dewetting Thickness
(49) Table 1 (shown below) presents the dewetting thickness and segment weight average molecular weight data obtained from a plurality of other lubricants. Each of the other lubricants includes at least one segment including perfluoroalkyl ether moieties linked to other segments through an ether linkage which include a functional group including elements from Group 13-17 of the periodic table of the elements. Some of the other lubricants of Table 1 include a divalent center segment Rc including perfluoroalkyl ether moieties terminated by monovalent end segments Re.sup.1 and Re.sup.2 including a functional group including elements from Group 13-17 of the periodic table of the elements, e.g., according to the general formula:
Re.sup.1-Rc-Re.sup.2.
(50) Other lubricants used to produce Table 1 include a plurality of segments, each linked together through an ether linkage according to a general formula:
Re-Rb-Ri-Rc-Ri-Rb-Re;
wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety; each Rb is a sidechain segment that includes a perfluoroalkyl ether moiety; the Ri segments are divalent linking segments including a functional group including elements from Group 13-17 of the periodic table of the elements, and Re is a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements.
(51) Table 1 Segment Weight Average Molecular Weight and Dewetting Thickness of known lubricants
(52) TABLE-US-00001 TABLE 1 Segment Weight Average Dewetting Thickness Molecular Weight g/mol T.sub.dw () 1500 16.6 2210 18.4 3390 23.5 3820 25.2 2210 19.3 2240 15.9 1290 11.5 1290 12.6 4200 26.9 408 8 872 12.5 640 15 930 11
(53) A plot of the data presented in Table 1 is shown in
T.sub.dw=();
in which is the segment weight average molecular weight of the lubricant, and is a function determined from a relationship between dewetting thickness and segment weight average molecular weight of a plurality of other lubricants; wherein each of the plurality of other lubricants independently includes a center segment and/or sidechain segments including perfluoroalkyl ether moieties. In one aspect, is a function determined from a relationship between dewetting thickness and segment weight average molecular weight of a plurality of other lubricants, wherein each of the plurality of other lubricants includes one or more segments including perfluoroalkyl ether moieties, wherein the segment weight average molecular weight of each of the other lubricants is equal to the weight average molecular weight of the one or more segments including perfluoroalkyl ether moieties present in the respective other lubricant, and wherein the segment weight average molecular weight of each of the plurality of other lubricants is from about 300 g/mol to about 5,000 g/mol.
(54) In one aspect, the function is a linear fit of dewetting thickness versus segment weight average molecular weight of a plurality of the other lubricants. In one aspect the relationship may be determined according to a linear fit of these data, while in other aspects other mathematical fits or relationships may be utilized.
(55) In the exemplary aspect of the disclosure shown in
(56) Referring to
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
(57) wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety;
(58) wherein each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety;
(59) wherein each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and
(60) wherein each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and wherein Rb.sup.1RcRb2. See operation 502.
(61) The method 500 further includes determining a segment weight average molecular weight () according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3.
See operation 504.
(62) In various approaches, the method 500 further includes determining a dewetting thickness T.sub.dw determined according to the formula:
T.sub.dw= ();
wherein is a function determined from a relationship between dewetting thickness and a segment weight average molecular weight of a plurality of other lubricants, each of the plurality of other lubricants independently including a center segment and/or sidechain segments including perfluoroalkyl ether moieties. In one aspect, is a function determined from a mathematical fit, e.g., a linear fit of data representing dewetting thickness and segment weight average molecular weight of a plurality of other lubricants. For example, utilizing the equation determined in
(63) Returning to
Example 1 =(116.015*b.sup.1+116.015*b.sup.2+116.015*b.sup.3)3;
Example 1 =(116.015*6+116.015*6+116.015*2)3;
Example 1 =(1624.21)3;
Example 1 =541.40.
(64) Likewise, the segment weight average molecular weight () of the Example 2 aspect of the disclosure indicated as 310 in
Example 2 =(116.015*b.sup.1+116.015*b.sup.2+116.015*b.sup.3)3;
Example 2 =(116.015*2+116.015*2+116.015*6)3;
Example 2 =(1160.15)3;
Example 2 =386.71.
(65) Utilizing this relationship, the dewetting thickness of the exemplary lubricant Example 1 shown in
Example 1 T.sub.dw=0.0045+8.0226;
Example 1 T.sub.dw=0.0045*541.40+8.0226;
Example 1 T.sub.dw=10.46 .
(66) The same calculation of the dewetting thickness of the exemplary lubricant Example 2 shown in
(67) TABLE-US-00002 TABLE 2 Segment Weight Calculated Measured Average Dewetting Dewetting Molecular Weight Thickness Thickness Example (g/mol) Tdw () Tdw () Uncertainty EXAMPLE 1 541.40 10.46 10.9 +/0.4 EXAMPLE 2 386.71 9.76 10.1 +/0.2
(68) As these data show, a method according to one aspect of the disclosure provides a determination of the dewetting thickness of a lubricant within +/0.5 . In one aspect of the disclosure, the dewetting thickness T.sub.dw may be determined according to the formula:
T.sub.dw=();
wherein is function determined from a plot or other means of fitting data to an equation (e.g., a linear fit) of dewetting thickness to a segment weight average molecular weight of a plurality of other lubricants, each of the plurality of other lubricants independently including a center segment and/or sidechain segments including perfluoroalkyl ether moieties, is about equal to a measured dewetting thickness of the lubricant. In one aspect of the disclosure, the dewetting thickness T.sub.dw may be determined according to the formula:
T.sub.dw= ();
and is equal to a measured dewetting thickness of the lubricant +/ about 10 , or about 5 , or about 1 , or about 0.5 .
(69) In one aspect of the disclosure, a method to determine a dewetting thickness of a lubricant includes the steps of providing a representation of the lubricant including a plurality of segments, each linked together through an ether linkage according to a general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety; each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety; each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements, wherein Rb.sup.1RcRb.sup.2. It is to be understood that in one aspect of the disclosure, this step of providing, or generating, a representation of the lubricant only requires providing/generating the chemical formula of the lubricant, and does not necessarily require providing the lubricant in physical form. This allows for a lubricant according to the general formula to be evaluated and/or designed to include a particular properties as may be needed for an intended use.
(70) The method further includes determining a segment weight average molecular weight () of the provided chemical formula according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3,
followed by determining the dewetting thickness T.sub.dw of the lubricant according to the formula:
T.sub.dw= ();
wherein is function determined a linear fit of dewetting thickness to a segment weight average molecular weight of a plurality of other lubricants, each of the plurality of other lubricants independently including a center segment and/or sidechain segments including perfluoroalkyl ether moieties.
Aspects of Lubricants
(71) In one aspect of the disclosure, the lubricant includes or is formed from (e.g., comprises, consists essentially of, or consists of) a plurality of segments, each linked together through an ether linkage according to a general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety; each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety; each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements, wherein Rb.sup.1RcRb.sup.2.
(72) In one aspect of the disclosure the center segment of the lubricant, Rc includes a perfluoroethyl ether moiety and/or each of the sidechain segments Rb.sup.1 and Rb.sup.2 includes a perfluoroethyl ether moiety.
(73) In one aspect of the disclosure, each linking segment Ri has the general formula:
(74) ##STR00001##
wherein each R.sup.1 is, independently, a functional group including elements from Group 13-17 of the periodic table of the elements.
(75) In one aspect of the disclosure, end segment Re.sup.1 has the general formula:
(76) ##STR00002##
and
(77) Re.sup.2 has the general formula:
(78) ##STR00003##
wherein each R.sup.1 is, independently, a functional group including elements from Group 13-17 of the periodic table of the elements. The difference between Re.sup.1 and Re.sup.2 being the additional oxygen atom required to produce an ether linkage between the sidechain segment Rb.sup.1, which begins with a carbon atom.
(79) In some aspects, each R.sup.1 is, independently, a functional group which includes: a saturated C.sub.1-C.sub.20 radical, an unsaturated C.sub.1-C.sub.20 radical, an alicyclic C.sub.3-C.sub.20 radical, a heterocyclic C.sub.3-C.sub.20 radical, an aromatic C.sub.5-C.sub.20 radical, a heteroaromatic C.sub.5-C.sub.20 radical, a cyclotriphosphazine radical, a halogen, NR*.sub.2, NR*COR*,OR*,OCOR*, COOR*, SeR*, TeR*, PR*.sub.2, PO(OR*).sub.2, OPO(OR*).sub.2, NP(NR*.sub.2).sub.3, AsR*.sub.2, SR*, SO.sub.2(OR*).sub.2, BR*.sub.2, SiR*.sub.3, (CH.sub.2)q-SiR*.sub.3, (CF.sub.2)q-SiR*.sub.3, or a combination thereof, wherein q is 1 to 10 and each R* is, independently a hydrogen, a halogen, a saturated, unsaturated, aromatic, and/or heterocyclic C.sub.1-C.sub.20 radical, and wherein two or more R* may join together to form a ring structure, and wherein at least one functional group is selected to be attachable to the protective overcoat of the magnetic recording media. In some aspects of the disclosure each R.sup.1 is a hydroxyl (OH).
(80) In one aspect of the disclosure, Rc is of the formula:
(81) ##STR00004##
(82) Rb.sup.1 is of the formula:
(83) ##STR00005##
and
(84) Rb.sup.2 is of the formula:
(85) ##STR00006##
wherein each of x, y.sup.1 and y.sup.2 is, independently, an integer from 1 to 10, wherein y.sup.1xy.sup.2. This results in an asymmetric arrangement of the lubricant segments in that all of the perfluoroalkyl ether segments are not identical. In one aspect of the disclosure, x is less than y.sup.1 and x is less than y.sup.2. In another aspect of the disclosure, x is greater than y.sup.1 and x is greater than y.sup.2. In some aspects of the disclosure, y.sup.1y.sup.2, and in other aspects of the disclosure, y.sup.1=y.sup.2.
(86) In one aspect of the disclosure the lubricant is of the general formula:
(87) ##STR00007##
wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10, or from 2 to 8, or from 3 to 6; subject to the proviso that y.sup.1xy.sup.2.
(88) In one aspect of the disclosure, the dewetting thickness Tdw is according to the formula:
T.sub.dw=0.0045()+8.0226; wherein
=(116.015*y.sup.1+116.015*y.sup.2+116.015*x)3.
(89) In one aspect of the disclosure, the lubricant has a weight average molecular weight of greater than or equal to about 1 kiloDalton (kDa), or from about 1 to about 20 kDa, or from about 2 to about 10 kDa, or from about 3 to about 7 kDa, or from about 1 to about 5 kDa, or 2 to about 4 kDa. In one or more aspects, the lubricants are essentially pure compounds, having a polydispersity, defined as the number average molecular weight Mn divided by the weight average molecular weight Mw (Mn/Mw) from about 1 to 2, or from about 1 to about 1.5, or from about 1 to about 1.05.
(90) Fabrication of Magnetic Recording Media
(91) Applicant has discovered that a relatively high molecular weight, e.g., greater than or equal to about 1000 atomic mass units (amu), or preferably greater than or equal to about 3000 amu, is less prone to evaporation, which is of particular importance under the relatively high temperature conditions used within HAMR drives. Applicant has further discovered that the induced asymmetry present in the molecular structure allows the use of the segment weight average molecular weight of the main chain segments, e.g., the center segment and the two sidechain segments, to impart flexibility to tune the dewetting thickness of the lubricant. The accuracy of the ability to determine the dewetting thickness of a lubricant increases when the perfluoroalkyl ether segments are formed from perfluoroethyl ether moieties. The lubricants according to one or more aspects of the disclosure include enhanced adsorption, reduced lube pickup, and a reduction in the layer thickness required in combination with an improved coverage. Lubricants according to aspects of the disclosure thus allow for operation of the head closer to the media, using a minimal lubricant thickness set according to the dewetting thickness of the lubricant. This reduces the number of available sites that are prone to contamination, and renders the lubricant layer more robust while improving head wear of the magnetic media utilizing the lubricant.
(92) In one or more aspects, the average thickness of the lubricant layer of the magnetic recording medium is less than about 3 nanometers, or less than about 2 nm, or less than about 1 nm, or less than or equal to about 0.8 nm. In some aspects, the lubricant of the magnetic recording medium has an average thickness from about 0.3 nm to about 3 nm, or from about 0.3 to about 1 nm.
(93) In one or more aspects of the magnetic recording medium, the lubricant has a bonding percentage of at least 70%, or at least 75%, or at least 80%, or at least 85%, corresponding to a degree of bonding of the lubricant to the total area of an upper surface of the protective overcoat or other surface on which the lubricant is located.
(94) In one aspect, a magnetic data storage system includes a magnetic head; a magnetic recording medium according to any one or a combination of aspects disclosed herein including a lubricant according to one or more aspects disclosed herein, a drive mechanism for positioning the magnetic head over the magnetic recording medium; and a controller electrically coupled to the magnetic head for controlling operation of the magnetic head.
(95) Referring to
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
(96) wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety;
(97) each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety;
(98) each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and
(99) each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements;
(100) wherein Rb.sup.1RcRb.sup.2;
(101) the lubricant having a segment weight average molecular weight () determined according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3; and
(102) a dewetting thickness T.sub.dw determined according to the formula:
T.sub.dw= ();
wherein is function determined from a relationship between a dewetting thickness and a segment weight average molecular weight of a plurality of other lubricants, which may be a linear fit of these data, each of the plurality of other lubricants independently including a center segment and/or sidechain segments including perfluoroalkyl ether moieties.
(103) It is important to note that in alternative approaches, the lubricant layer formed on the protective overcoat may include any aspect of the lubricant described herein, singly and/or in any combination.
(104) In various aspects, the lubricant layer can be formed on the magnetic recording medium, specifically on the protective overcoat, via a dip coating method. For instance, in one aspect the magnetic recording medium may be dipped into a lubricant bath including the multidentate perfluoropolyether boundary lubricant according to one or more aspects of the disclosure and a fluorocarbon solvent such as Vertrel-XF. After a predetermined amount of time, the magnetic recording medium may be removed from the lubricant bath at a controlled rate. The solvent may then evaporate, leaving behind a lubricant layer comprising the boundary lubricant according to one aspect of the disclosure. The percentage of the lubricant remaining on the surface of the magnetic recording medium after disposition of the lubricant may be referred to as the bonded percentage or the bonding percentage. The bonding percentage may be quantified for various time periods by exposing the lubricated magnetic recording medium with the solvent used in the lubricant bath.
(105) The thickness of the lubricant layer may be tuned by controlling the submergence duration of the magnetic recording medium in the lubricant bath, the rate at which the magnetic recording medium is removed from the coating solution, and/or the concentration of the boundary lubricant according to one or more aspects of the disclosure in the lubricant bath.
(106) In one or more aspects, the concentration of lubricant in the lubricant bath may be in a range from about 0.1 g/L to about 0.2 g/L. In yet other aspects, the concentration of the lubricant in the lubricant bath may be selected so as to achieve a resulting lubricant layer with a thickness in a range from about less than or equal to about 3 nanometers (nm), or less than or equal to about 2 nm, or less than or equal to about 1 nm or from about 0.3 nm to less than about 1 nm.
(107) It is important to note that formation of the lubricant layer on the surface of the magnetic recording medium, specifically on the surface of the protective overcoat, is not limited to dip coating, but may also involve spin coating, spray coating, a vapor deposition, combinations thereof, or any other suitable coating process as would be understood by one having skill in the art upon reading the present disclosure. In addition, the magnetic recording layer, the protective overcoat, and/or any of the other layers of the media (e.g., including each of the layers shown for media 200 in FIG. b) may be formed using any of numerous deposition methods that are known in the art.
(108) It should be noted that methodology presented herein for at least some of the various aspects may be implemented, in whole or in part, in computer hardware, by hand, using specialty equipment, and/or the like, and combinations thereof.
(109) Moreover, any of the structures and/or steps may be implemented using known materials and/or techniques, as would become apparent to one skilled in the art upon reading the disclosure.
(110) Aspects Listing
(111) Having described the various aspects of the disclosure herein, further specific aspects include those set forth in the following paragraphs:
(112) A1. A lubricant comprising: a plurality of segments, each linked together by ether linkages according to a general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
(113) wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety;
(114) wherein each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety;
(115) wherein each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements;
(116) wherein each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements;
(117) wherein Rb.sup.1RcRb.sup.2; and
(118) wherein the lubricant comprises: a segment weight average molecular weight () determined according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3;
and
(119) wherein a dewetting thickness of the lubricant T.sub.dw is determined according to the formula:
T.sub.dw= ();
(120) wherein is a function determined from a relationship between dewetting thickness and segment weight average molecular weight of a plurality of other lubricants;
(121) wherein each of the plurality of other lubricants includes one or more segments including perfluoroalkyl ether moieties;
(122) wherein the segment weight average molecular weight of each of the other lubricants is equal to the weight average molecular weight of the one or more segments including perfluoroalkyl ether moieties present in the respective other lubricant; and
(123) wherein the segment weight average molecular weight of each of the plurality of other lubricants is from about 300 g/mol to about 5,000 g/mol.
(124) A2. The lubricant according to aspect A1, wherein each functional group includes: a saturated C.sub.1-C.sub.20 radical, an unsaturated C.sub.1-C.sub.20 radical, an alicyclic C.sub.3-C.sub.20 radical, a heterocyclic C.sub.3-C.sub.20 radical, an aromatic C.sub.5-C.sub.20 radical, a heteroaromatic C.sub.5-C.sub.20 radical, a cyclotriphosphazine radical, a halogen, NR*.sub.2, NR*COR*,OR*,OCOR*, COOR*, SeR*, TeR*, PR*.sub.2, PO(OR*).sub.2, OPO(OR*).sub.2, NP(NR*.sub.2).sub.3, AsR*.sub.2, SR*, SO.sub.2(OR*).sub.2, BR*.sub.2, SiR*.sub.3, (CH.sub.2)q-SiR*.sub.3, (CF.sub.2)q-SiR*.sub.3, or a combination thereof, wherein q is 1 to 10 and each R* is, independently a hydrogen, a halogen, a saturated, unsaturated, aromatic, and/or heterocyclic C.sub.1-C.sub.20 radical, and wherein two or more R* may join together to form a ring structure, and wherein at least one functional group is selected to be attachable to the protective overcoat of the magnetic recording media.
(125) A3. The lubricant according to aspect A1 or A2, wherein each functional group is a hydroxyl (OH).
(126) A4. The lubricant according to any one of aspects A1 through A3, including a weight average molecular weight from about 1 to 20 kiloDaltons (kDa) and a polydispersity of from about 1 to 2.
(127) A5. The lubricant according to any one of aspects A1 through A4, wherein Rc includes a perfluoroethyl ether moiety and each of Rb.sup.1 and Rb.sup.2 includes a perfluoroethyl ether moiety.
(128) A6. The lubricant according to any one of aspects A 1 through A5, wherein each Ri has the general formula:
(129) ##STR00008##
(130) wherein each R.sup.1 is, independently, a functional group including elements from Group 13-17 of the periodic table of the elements.
(131) A7. The lubricant according to any one of aspects A1 through A6, wherein Re.sup.1 has the general formula:
(132) ##STR00009##
(133) Re.sup.2 has the general formula:
(134) ##STR00010##
(135) wherein each R.sup.1 is, independently, a functional group including elements from Group 13-17 of the periodic table of the elements.
(136) A8. The lubricant according to any one of aspects A1 through A7, wherein:
(137) Rc is of the formula:
(138) ##STR00011##
(139) Rb.sup.1 is of the formula:
(140) ##STR00012##
(141) Rb.sup.2 is of the formula:
(142) ##STR00013##
(143) wherein each of x, y.sup.1 and y.sup.2 is, independently, an integer from 1 to 10.
(144) A9. The lubricant according to aspect A8, wherein x is less than y.sup.1 and x is less than y.sup.2.
(145) A10. The lubricant according to aspect A8, wherein x is greater than y.sup.1 and x is greater than y.sup.2.
(146) A11. The lubricant according to aspect A8, A9, or A10, wherein y.sup.1y.sup.2.
(147) A12. The lubricant according to aspect A8, A9, or A10, wherein y.sup.1=y.sup.2.
(148) A13. The lubricant according to any one of aspects A6 through A12, wherein each R.sup.1 is a hydroxyl (OH).
(149) A14. The lubricant according to any one of aspects A1 through A13 including the formula:
(150) ##STR00014##
(151) wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10; and
(152) y.sup.1xy.sup.2.
(153) A15. The lubricant according to any one of aspects A1 through A14, wherein the dewetting thickness T.sub.dw is according to the formula:
T.sub.dw=0.0045()+8.0226;
wherein =[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3.
(154) A16. The lubricant according to any one of aspects A6 through A14, wherein
(155) the dewetting thickness T.sub.dw is according to the formula:
T.sub.dw=0.0045()+8.0226; and
=(116.015*y.sup.1+116.015*y.sup.2+116.015*x)3.
(156) A17. The lubricant according to any one of aspects A1 through A16, including a weight average molecular weight from about 1 to 20 kiloDaltons (kDa) and a polydispersity of from about 1 to 2.
(157) A18. The lubricant according to any one of aspects A1 through A17, including a dewetting thickness of less than or equal to about 3 nm.
(158) A19. A magnetic recording medium, comprising: a magnetic recording layer on a non-magnetic substrate; a protective overcoat on the magnetic recording layer; and a lubricant layer including the lubricant according to any one of aspects A1 through A18 on the protective overcoat.
(159) A20. The magnetic recording medium according to aspect A19, wherein the lubricant has a bonding percentage of about 70% to less than 100%.
(160) A21. The magnetic recording medium according to aspect A19 or A20, wherein an average thickness of the lubricant is less than or equal to about 3 nanometers.
(161) A22. A method to determine a dewetting thickness of a lubricant according to any one of aspects A1 through A18, comprising: a) providing a representation of the lubricant according to the general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2; b) determining a segment weight average molecular weight (a) according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3; and c) determining the dewetting thickness T.sub.dw of the lubricant according to the formula:
T.sub.dw= ();
(162) wherein is a function determined from a relationship between dewetting thickness and segment weight average molecular weight of a plurality of other lubricants;
(163) wherein each of the plurality of other lubricants includes one or more segments including perfluoroalkyl ether moieties;
(164) wherein the segment weight average molecular weight of each of the other lubricants is equal to the weight average molecular weight of the one or more segments including perfluoroalkyl ether moieties present in the respective other lubricant; and
(165) wherein the segment weight average molecular weight of each of the plurality of other lubricants is from about 300 g/mol to about 5,000 g/mol.
(166) A23. A method to determine a dewetting thickness of a lubricant, comprising:
(167) a) providing a representation of the lubricant including a plurality of segments, each linked together through an ether linkage according to a general formula:
Re.sup.1-Rb.sup.1-Ri-Rc-Ri-Rb.sup.2-Re.sup.2;
(168) wherein Rc is a divalent center segment including a perfluoroalkyl ether moiety;
(169) each of Rb.sup.1 and Rb.sup.2 is, independently, a sidechain segment including a perfluoroalkyl ether moiety;
(170) each Ri is, independently, a divalent linking segment including a functional group including elements from Group 13-17 of the periodic table of the elements; and
(171) each of Re.sup.1 and Re.sup.2 is, independently, a monovalent end segment including a functional group including elements from Group 13-17 of the periodic table of the elements;
(172) wherein Rb.sup.1RcRb.sup.2;
(173) b) determining a segment weight average molecular weight () according to the formula:
=[molecular weight of Rb.sup.1+molecular weight of Rb.sup.2+molecular weight of Rc]3; and
(174) c) determining the dewetting thickness T.sub.dw of the lubricant according to the formula:
T.sub.dw= ();
(175) wherein is a function determined from a relationship between dewetting thickness and segment weight average molecular weight of a plurality of other lubricants;
(176) wherein each of the plurality of other lubricants includes one or more segments including perfluoroalkyl ether moieties;
(177) wherein the segment weight average molecular weight of each of the other lubricants is equal to the weight average molecular weight of the one or more segments including perfluoroalkyl ether moieties present in the respective other lubricant; and
(178) wherein the segment weight average molecular weight of each of the plurality of other lubricants is from about 300 g/mol to about 5,000 g/mol.
(179) A24. The method according to aspect A22 or A23, wherein the dewetting thickness T.sub.dw of the lubricant is according to the formula:
T.sub.dw=0.0045()+8.0226.
(180) A25. The method according to any one of aspects A22 through A24, wherein the lubricant includes the formula:
(181) ##STR00015##
(182) wherein each of x, y.sup.1, and y.sup.2 is an integer from 1 to 10;
(183) y.sup.1xy.sup.2; and
=(116.015*y.sup.1+116.015*y.sup.2+116.015*x)3.
(184) A26. The method according to aspect A25 wherein x is less than y.sup.1 and x is less than y.sup.2.
(185) A27. The method according to aspect A25 wherein x is greater than y.sup.1 and x is greater than y.sup.2.
(186) A28. The method according to any one of aspects A25 through A27, wherein y.sup.1y.sup.2.
(187) A29. The method according to any one of aspects A25 through A27, wherein y.sup.1=y.sup.2.
(188) A30. A data storage system, comprising:
(189) at least one magnetic head;
(190) a magnetic recording medium according to any one of aspects A19 through A21;
(191) a drive mechanism for positioning the at least one magnetic head over the magnetic recording medium; and
(192) a controller electrically coupled to the at least one magnetic head for controlling operation of the at least one magnetic head.
(193) A31. A data storage system, comprising:
(194) a slider comprising at least one magnetic head and an air bearing surface (ABS), wherein a lubricant according to any one of aspects A1 through A18 is disposed on the ABS; and
(195) a magnetic recording medium including a magnetic recording layer;
(196) wherein the slider is configured to write information to the magnetic recording layer using heat assisted magnetic recording (HAMR).
(197) The above description is made for the purpose of illustrating the general principles of the present disclosure and is not meant to limit the inventive concepts claimed herein. Further, particular features described herein can be used in combination with other described features in each of the various possible combinations and permutations.
(198) It should be noted that in the development of any such actual aspect, numerous implementation-specific decisions must be made to achieve the developer's specific goals, such as compliance with system related and business related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time consuming but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure. In addition, the device, system and/or method used/disclosed herein can also comprise some components other than those cited.
(199) Unless otherwise specifically defined herein, all terms are to be given their broadest possible interpretation including meanings implied from the specification as well as meanings understood by those skilled in the art and/or as defined in dictionaries, treatises, and the like.
(200) It must also be noted that, as used in the specification and the appended claims, the singular forms a, an and the include plural referents unless otherwise specified.
(201) As also used herein, the term about denotes an interval of accuracy that ensures the technical effect of the feature in question. In various approaches, the term about when combined with a value, refers to plus and minus 10% of the reference value. For example, a thickness of about 10 angstroms () refers to a thickness of 10 +/1 , e.g., from 0.9 to 1.1 in this example.
(202) In the summary and this detailed description, each numerical value should be read once as modified by the term about (unless already expressly so modified), and then read again as not so modified unless otherwise indicated in context. Also, in the summary and this detailed description, it should be understood that a physical range listed or described as being useful, suitable, or the like, is intended that any and every value within the range, including the end points, is to be considered as having been stated. For example, a range of from 1 to 10 is to be read as indicating each and every possible number along the continuum between about 1 and about 10. Thus, even if specific data points within the range, or even no data points within the range, are explicitly identified or refer to only a few specific, it is to be understood that inventors appreciate and understand that any and all data points within the range are to be considered to have been specified, and that inventors possessed knowledge of the entire range and all points within the range.
(203) As used in the specification and claims, near is inclusive of at. The term and/or refers to both the inclusive and case and the exclusive or case, and such term is used herein for brevity. For example, a composition comprising A and/or B may comprise A alone, B alone, or both A and B.
(204) Various components described in this specification may be described as including and/or made of, and/or having certain materials, properties, or compositions of material(s). In one aspect, this can mean that the component consists of certain materials, properties, or compositions of materials. In another aspect, this can mean that the component comprises certain materials, properties, or compositions of material(s).
(205) The word exemplary is used herein to mean serving as an example, instance, or illustration. Any implementation or aspect described herein as exemplary is not necessarily to be construed as preferred or advantageous over other aspects of the disclosure. Likewise, the term aspects does not require that all aspects of the disclosure include the discussed feature, advantage or mode of operation. The term coupled is used herein to refer to the direct or indirect coupling between two objects. For example, if object A physically touches object B, and object B touches object C, then objects A and C may still be considered coupled to one another-even if they do not directly physically touch each other.
(206) It is further noted that the term over and/or the term on as used in the disclosure in the context of one component located over another component, or in the context of one component located on another component, may be used to mean a component that is directly on a surface of another component e.g., disposed in physical contact with the surface of the other component, and/or in another component, e.g., directly embedded in a component. Thus, for example, a first component that is over or on the second component may mean that (1) the first component is located over or above the second component, but not directly touching the second component, (2) the first component is directly on (e.g., directly on a surface of) the second component, and/or (3) the first component is in (e.g., embedded in) the second component.
(207) In the disclosure various ranges in values may be specified, described and/or claimed. It is noted that any time a range is specified, described and/or claimed in the specification and/or claim, it is meant to include the endpoints (at least in one aspect). In another aspect, the range may not include the endpoints of the range. In the disclosure various values (e.g., value X) may be specified, described and/or claimed. In one aspect, it should be understood that the value X may be exactly equal to X. In one aspect, it should be understood that the value X may be about X, with the meaning noted above. Likewise, when a value is determined according to an equation, it is to be understood that in one aspect, the value is equal to the value calculated according to the equation and in another aspect, the value is about equal to the value calculated according to the equation according to the meaning noted above, or as is expressly provided for, e.g., plus or minus (+/) a specific amount.
(208) While various aspects have been described above, it should be understood that they have been presented by way of example only, and not limitation. Thus, the breadth and scope of an aspect of the present invention should not be limited by any of the above-described exemplary aspects, but should be defined only in accordance with the following claims and their equivalents.