Nanostructured phosphorescent pigment and uses thereof
10899960 · 2021-01-26
Assignee
- CONSEJO SUPERIOR DE INVESTIGACIONES CIENTÍFICAS (Madrid, ES)
- FÁBRICA NACIONAL DE MONEDA Y TIMBRE—REAL CASA DE LA MONEDA (Madrid, ES)
Inventors
- José Francisco FERNÁNDEZ LOZANO (Madrid, ES)
- Rocío Estefanía Rojas Hernández (Madrid, ES)
- Esther ENRÍQUEZ PÉREZ (Madrid, ES)
- Fernando Rubio Marcos (Madrid, ES)
- Vicente GARCÍA JUEZ (Madrid, ES)
- Lara Antón Ibáñez (Madrid, ES)
Cpc classification
C09K11/025
CHEMISTRY; METALLURGY
International classification
C09K11/02
CHEMISTRY; METALLURGY
Abstract
The present invention relates to a nanostructured phosphorescent pigment comprising an Al.sub.2O.sub.3 substrate; MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.3+ and combinations thereof and where X is a cation selected from Eu.sup.3+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate; and nanocrystals of molten salt disposed on the MAl.sub.2O.sub.4:X nanocrystals. Additionally, the invention relates to a method for preparing the nanostructured phosphorescent pigment of the invention comprising the steps of i) mixing starting materials comprising a cation M precursor, a cation X precursor, Al.sub.2O.sub.3 and a molten salt; ii) heating the mixture resulting from step (i) in reducing atmosphere. The invention also relates to the use of the nanostructured phosphorescent pigment of the invention for signaling, illumination, decoration or authentication and to a security article comprising the nanostructured phosphorescent pigment of the invention.
Claims
1. A nanostructured phosphorescent pigment comprising: an Al.sub.2O.sub.3 substrate; MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.2+ and combinations thereof, and where X is a cation selected from Eu.sup.2+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Sm.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate; and nanocrystals of at least one salt used in a molten salt process disposed on the MAl.sub.2O.sub.4:X nanocrystals.
2. The nanostructured phosphorescent pigment according to claim 1, wherein the particle size of the pigment is 10 m.
3. The nanostructured phosphorescent pigment according to claim 1, wherein the Al.sub.2O.sub.3 substrate is -Al.sub.2O.sub.3.
4. The nanostructured phosphorescent pigment according to claim 1, wherein the size of the MAl.sub.2O.sub.4:X nanocrystals is 500 nm.
5. The nanostructured phosphorescent pigment according to claim 1, wherein the salt is a eutectic mixture.
6. The nanostructured phosphorescent pigment according to claim 1, wherein the salt:(MAl.sub.2O.sub.4:X) molar ratio is comprised between 1:1 and 5:1.
7. The nanostructured phosphorescent pigment according to claim 1, further comprising an outer layer comprising hybrid silica nanoparticles.
8. The nanostructured phosphorescent pigment according to claim 1, wherein the at least one salt used in the molten salt process comprises a species selected from the group consisting of Na.sub.2SO.sub.4, K.sub.2SO.sub.4, Li.sub.2SO.sub.4, NaCl, KCl, LiCl and mixtures thereof.
9. A method for preparing the nanostructured phosphorescent pigment as defined in claim 1, comprising the steps of: i) mixing starting materials comprising a cation M precursor, a cation X precursor, Al.sub.2O.sub.3 and at least one salt used in a molten salt process; and ii) heating the mixture resulting from step (i) at a temperature between 900 and 1400 C. in reducing atmosphere.
10. The method for preparing the nanostructured phosphorescent pigment according to claim 9, wherein the particle size of Al.sub.2O.sub.3 of step i) is less than or equal to 6 m.
11. The method for preparing the nanostructured phosphorescent pigment according to claim 9, wherein step i) comprises an Al.sub.2O.sub.3:cation M precursor molar ratio of 2.
12. The method for preparing the nanostructured phosphorescent pigment according to claim 9, comprising a step iii) of adding an ethanol/water solution of a silica precursor and an acid on the material resulting from step ii) to obtain an outer layer comprising hybrid silica nanoparticles.
13. The method for preparing the nanostructured phosphorescent pigment according to claim 9, wherein the at least one salt used in the molten salt process comprises a species selected from the group consisting of Na.sub.2SO.sub.4, K.sub.2SO.sub.4, Li.sub.2SO.sub.4, NaCl, KCl, LiCl and mixtures thereof.
14. A method of making an object to be authenticated, signaled, illuminated or decorated, the method comprising: incorporating a nanostructured phosphorescent pigment in the object; or coating the object with the nanostructured phosphorescent pigment, wherein the nanostructured phosphorescent pigment comprises: an Al.sub.2O.sub.3 substrate; MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.2+ and combinations thereof, and where X is a cation selected from Eu.sup.2+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Sm.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate; and nanocrystals of at least one salt used in a molten salt process disposed on the MAl.sub.2O.sub.4:X nanocrystals.
15. A security article comprising the nanostructured phosphorescent pigment according to claim 1.
16. The security article according to claim 15 which is selected from security paper, an envelope, a check, a promissory note, a banknote, an identity card, a passport, a ticket, a seal, a pass, a certificate, a tag or a label.
Description
DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
(28)
(29)
(30)
(31)
DETAILED DESCRIPTION OF THE INVENTION
(32) Unless otherwise defined, all the technical and scientific terms used in this article have the same meaning as those commonly understood by a person skilled in the art to which this description belongs.
(33) Phosphorescent Pigment
(34) The present invention relates to a nanostructured phosphorescent pigment comprising an Al.sub.2O.sub.3 substrate; MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.2+ and combinations thereof, and where X is a cation selected from Eu.sup.2+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Sm.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate; and nanocrystals of salt used in a molten salt process disposed on the MAl.sub.2O.sub.4:X nanocrystals.
(35) The term phosphorescent pigment refers to a material absorbing and storing energy when exposed to an excitation source for subsequently emitting same in the form of light with a half-life greater than 0.1 s. Among phosphorescent pigments are the so-called prolonged persistence pigments emitting light once the excitation has ceased since the absorbed energy is released in a slow and continuous manner.
(36) In a particular embodiment, the phosphorescent pigment of the present invention is a prolonged persistence phosphorescent pigment.
(37) The nanostructured phosphorescent pigment of the present invention can have different particle morphologies. Non-limiting examples of the morphology of the nanostructured phosphorescent pigment of the present invention are particles having a pseudo-spherical, laminar and pseudo-hexagonal morphology.
(38) Without being bound to any particular theory, it is believed that the final morphology of the nanostructured phosphorescent pigment of the present invention depends on the nature of the starting Al.sub.2O.sub.3 substrate.
(39) The starting Al.sub.2O.sub.3 substrate can have a crystalline structure, such as for example, -Al.sub.2O.sub.3, -Al.sub.2O.sub.3, -Al(OH).sub.3 or -AlO(OH) or a polycrystalline structure. In a preferred embodiment, the Al.sub.2O.sub.3 substrate is -Al.sub.2O.sub.3.
(40) The starting Al.sub.2O.sub.3 substrate can have a macroscopic particle, sheet or fiber structure. In a preferred embodiment, the Al.sub.2O.sub.3 substrate of the nanostructured phosphorescent pigment of the present invention has a particle structure.
(41) In another preferred embodiment, the nanostructured phosphorescent pigment of the present invention has a particle size 10 m, preferably 0.5 m.
(42) The nanostructured phosphorescent pigment of the present invention further comprises MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.2+ and combinations thereof, and where X is a cation selected from Eu.sup.2+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Sm.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate. In a preferred embodiment, M is Sr. In another preferred embodiment, X is selected from Eu.sup.2+, Dy.sup.3+ and combinations thereof.
(43) The term nanostructured refers to materials made up of crystals having size comprised between 1 and 1000 nm. In the context of the present invention, the sizes of crystal or crystallite are preferably determined from the Scherrer formula. The MAl.sub.2O.sub.4:X nanocrystals of the nanostructured phosphorescent pigment of the present invention have a crystal size 1000 nm.
(44) In a preferred embodiment, the MAl.sub.2O.sub.4:X nanocrystals of the nanostructured phosphorescent pigment of the present invention have a crystal size 500 nm, even more preferably between 10 nm and 300 nm.
(45) In a particular embodiment, the MAl.sub.2O.sub.4:X nanocrystals of the nanostructured phosphorescent pigment of the present invention forms a thin film on the Al.sub.2O.sub.3 substrate, preferably with a thickness 3 m. Said film can be a continuous or discontinuous film.
(46) The formulation of the aluminates of the pigment of the present invention is expressed as MAl.sub.2O.sub.4:X where M is a divalent cation and X is a cation referred to as dopant. The term dopant refers to an element or compound added to a material for changing a property of the pure material. In the context of the present invention, the dopant X is added in substitution of the divalent cation M to attain an optically active material.
(47) In a preferred embodiment, X in MAl.sub.2O.sub.4:X is in a molar proportion of less than 0.5%.
(48) The nanostructured phosphorescent pigment of the present invention further comprises nanocrystals of salt used in a molten salt process disposed on the MAl.sub.2O.sub.4:X nanocrystals. The nanocrystals of salt used in a molten salt process are located in the interstices between the MAl.sub.2O.sub.4:X nanocrystals or on the surface thereof.
(49) In a particular embodiment, the crystals of salt used in a molten salt process are isolated on the surface of the MAl.sub.2O.sub.4:X crystals and have a fibrillar-type morphology with sizes less than 50 nm.
(50) In a particular embodiment, the salt used in a molten salt process of the nanostructured phosphorescent pigment of the present invention is selected from chlorides, sulfurs and mixture thereof. Even more preferably, the salt used in a molten salt process of the nanostructured phosphorescent pigment of the present invention is selected from Na.sub.2SO.sub.4, K.sub.2SO.sub.4, Li.sub.2SO.sub.4, NaCl, KCl, LiCl and mixtures thereof.
(51) The salt used in a molten salt process of the nanostructured phosphorescent pigment of the present invention can also be a eutectic mixture of the salts defined above. The term eutectic mixture refers to a mixture of two components with minimum melting point (solidification) or boiling point (liquefaction), less than that corresponding to each of the compounds in pure state. This occurs in mixtures having a high stability in liquid state, the components of which are insoluble in solid state.
(52) In a particular embodiment, the salt used in a molten salt process of the phosphorescent pigment of the present invention is a eutectic mixture. In an even more preferred embodiment, the salt used in a molten salt process of the phosphorescent pigment of the present invention is a eutectic mixture of 0.5 NaCl-0.5 KCl (referred to as: (NaCl/KCl).sub.e).
(53) The authors of the present invention have observed that the luminescence of the nanostructured phosphorescent pigment of the present invention is greater the higher the salt content included in the mixture of starting materials in the method for preparing the pigment of the present invention. Without being bound to any particular theory, it is believed that this phenomenon is due to more MAl.sub.2O.sub.4:X nanocrystals being formed and to the doping cations diffusing better in the crystalline MAl.sub.2O.sub.4:X structure. Therefore, in a particular embodiment the salt:(MAl.sub.2O.sub.4:X) molar ratio in the nanostructured phosphorescent pigment of the present invention is comprised between 1:1 and 5:1. In a preferred embodiment, the salt:(MAl.sub.2O.sub.4:X) molar ratio in the nanostructured phosphorescent pigment of the present invention is 3:1.
(54) The phosphorescent properties of the pigment of the present invention are evaluated by means of the techniques known by the person skilled in the art, such as for example, emission spectra and phosphorescence decay curves in comparison with reference materials. The reference material is a material which has a high photoluminescence signal and is taken as a comparative reference and represents 100% of the signal.
(55) The authors of the present invention have observed that the phosphorescent pigment of the present invention has greater luminescence with respect to that described in the state of the art for the same range of aluminate nanocrystal size. For example, it has been observed that the nanostructured phosphorescent pigment of the present invention SrAl.sub.2O.sub.4:Eu,Dy has a phosphorescent signal intensity of 80% for crystallite size of 45 nm and 60% for crystallite size of 28 nm, using a micrometric commercial material SrAl.sub.2O.sub.4:Eu,Dy with pigment particle size of 20 m and crystal size of 100 nm as reference material. This reference material ground to a particle size of 5 m and crystallite size of 70 nm has photoluminescence values of 60% and photoluminescence values <30% for crystallite size <40 nm.
(56) Without being bound to any particular theory, it is believed that the increase of phosphorescent signal is due to quantum confinement processes favored by the existence of salt nanocrystallizations on the surface of aluminate nanocrystals and the crystalline strength exerted by the alumina support on which the nanocrystals grow.
(57) In a particular embodiment, the phosphorescent pigment of the present invention emits at a wavelength of about 510 nm.
(58) Additionally, this quantum confinement effect also translate into an increase of Raman modes relating to defects in the crystalline structure which translate into unique signs that can be detected by means of Raman spectroscopy. In a particular embodiment, the nanostructured phosphorescent pigment of the present invention has Raman peaks between 720 and 860 cm.sup.1, preferably Raman peaks in 768 and 821 cm.sup.1.
(59) In a particular embodiment, the nanostructured phosphorescent pigment of the present invention further comprises an outer layer comprising hybrid silica nanoparticles. The term hybrid silica nanoparticles refers to nanoparticles prepared from an organic silica precursor (for example, tetraethylorthosilicate, TEOS) by means of the sol-gel technique widely known by the person skilled in the art and maintaining the organic phase of the precursor.
(60) The outer layer of the pigment of the invention can be a continuous or discontinuous layer, preferably discontinuous. The presence of this outer layer increases the phosphorescent signal as well as the resistance of the nanostructured pigment of the invention against attack by water.
(61) Method for Preparing the Pigment of the Invention
(62) Another aspect of the present invention relates to a method for preparing the nanostructured phosphorescent pigment as defined above comprising the steps of i) mixing starting materials comprising a cation M precursor, a cation X precursor, Al.sub.2O.sub.3 and a salt used in a molten salt process; and ii) heating the mixture resulting from step (i) in reducing atmosphere.
(63) By means of the preparation method of the present invention, the aluminate nanocrystals are formed on the surface of the alumina substrate. Without being bound to any particular theory, it is believed that the formation process corresponds to a growth mechanism following a standard or template. Mechanism of this type results from the difference between the diffusion coefficients of the different species involved, in this case the cations M.sup.2+ and Al.sup.3+, the M.sup.2+ cation being more superior than the Al.sup.3+ cations.
(64) In a preferred embodiment, the Al.sub.2O.sub.3:precursor molar ratio of the cation M of the starting materials is comprised between 1 and 2.
(65) In a particular embodiment, the starting materials of step i) further comprise a mineralizing agent. In the context of the present invention, the term mineralizing agent refers to a compound which is added to the solid mixture of starting materials to favor diffusion and incorporation of cations X in the aluminate structure. The amount of mineralizing agent must be in the aluminate solid solution limit, i.e., at a concentration that does not cause the formation of different crystalline aluminate structures. In a preferred embodiment, the mineralizing agent of step i) is ZnO.
(66) In a particular embodiment, the mixing of step i) is performed by means of dry milling.
(67) In a particular embodiment, step i) further comprises sieving after mixing the starting materials.
(68) In a particular embodiment, the starting materials of step i) are subjected to a grinding and homogenization process before mixing to obtain an optimal particle size.
(69) In a preferred embodiment, the particle size of the starting materials is less than 6 m.
(70) Non-limiting examples of cation M and X precursors are carbonates, hydroxides, nitrates, and chlorides, preferably carbonates.
(71) In a preferred embodiment, step i) of the preparation method of the present invention comprises an Al.sub.2O.sub.3:cation M precursor molar ratio 2.
(72) In a preferred embodiment, the heating of step ii) of the preparation method of the present invention is performed at a temperature between 900 and 1400 C., preferably at 1000 C.
(73) In another preferred embodiment, step ii) of the preparation method of the present invention comprises a reducing N.sub.2H.sub.2 atmosphere.
(74) In a particular embodiment, the method for preparing the nanostructured phosphorescent pigment of the present invention comprises a step iii) of adding an ethanol/water solution of a silica precursor and an acid on the material resulting from step ii).
(75) Non-limiting examples of silica precursors suitable for the method of the present invention are silicon alkoxides such as tetraethylorthosilicate (TEOS), methyltrimethoxysilane (MTMOS), 3-glycidyloxypropyltrimethoxysilane (GPTMS), vinyltriethoxysilane (VTES) or combinations thereof.
(76) Hydrolysis of the silica precursor with an acid as catalyst occurs in step iii). Non-limiting examples of acids suitable for step iii) of the method of the invention are hydrochloric acid or sulfuric acid.
(77) In another preferred embodiment, the molar ratio between the reagents in step iii) of the method follows the following equation 1TEOS:xEtOH:4H.sub.2O:0.02 acid, where x=8 or 16.
(78) In another preferred embodiment, the TEOS:H.sub.2O molar ratio in step iii) of the method is 1:2.
(79) In another particular embodiment, step iii) further comprises adding an additive.
(80) Non-limiting examples of additives are dispersing agents, such as for example, a polyacrylic acid, surface active agents, such as for example, polyether-modified polydimethylsiloxane, or dry retarding agents, such as for example, glycerol.
(81) Another aspect of the present invention relates to a nanostructured phosphorescent pigment obtainable by the method of preparation as defined above, where said pigment comprises: an Al.sub.2O.sub.3 substrate; MAl.sub.2O.sub.4:X nanocrystals, where M is a cation selected from Ca.sup.2+, Sr.sup.2+, Ba.sup.2+, Mg.sup.2+, Zn.sup.2+ and combinations thereof, and where X is a cation selected from Eu.sup.2+, Dy.sup.3+, Nd.sup.3+, Er.sup.3+, La.sup.3+, Lu.sup.3+, Ce.sup.3+, Y.sup.3+, Sm.sup.3+, Gd.sup.3+, Tb.sup.3+, Tm.sup.3+, Yb.sup.3+ and combinations thereof, disposed on the Al.sub.2O.sub.3 substrate; and nanocrystals of salt used in a molten salt process disposed on the MAl.sub.2O.sub.4:X nanocrystals.
(82) As can be seen, the phosphorescent pigment obtained by means of the method of preparation as defined above comprises an aluminate crystal size in nanoscale and nanostructured pigment particle sizes <10 m, having an optimum phosphorescence and unique Raman signals.
(83) Applications of the Pigment of the Invention
(84) The authors of the present invention have observed that the developed nanostructured phosphorescent pigment has greater phosphorescence and looks whiter with respect to that described in the state of the art for the same range of aluminate nanocrystal size. These properties provide more versatility to the applications of the pigment of the present invention.
(85) Therefore, another aspect of the present invention relates to the use of the nanostructured phosphorescent pigment as defined above for signaling, illumination, decoration or authentication.
(86) The phosphorescent pigment of the invention can be found forming part of the structure per se (as a component or ink) or as a coating (paint or varnish) of the object the signaling, illumination, decoration or authentication thereof is to be achieved.
(87) The term signaling refers to indicating or marking by means of emergency, safety or road signs any danger, warning, fire, position of fire extinguishing equipment, threats, evacuation routes and emergency exits, hazardous areas, traffic regulations, etc.
(88) The term illumination refers to lighting an element in low light conditions. Non-limiting examples in which the pigment of the present invention can be used for illumination are keypads of electronic devices, structural components of automobiles or other means of transport, or forming part of cosmetic compositions to provide a skin brightening or whitening effect.
(89) The term decoration refers to the incorporation of a phosphorescent pigment for the purpose of producing an esthetic effect on an object. Non-limiting examples in which the phosphorescent pigment of the present invention can be used for decoration is in the textile sector or in construction.
(90) The term authentication refers to making sure the authenticity, origin or function of an article or product. The authors of the present invention have furthermore observed that the developed nanostructured phosphorescent pigment has unique Raman signals. This allows it to be detected by means of combination of Raman spectroscopy and fluorometry.
(91) Therefore, the invention also relates to a security article comprising the nanostructured phosphorescent pigment as defined above for ensuring its authenticity, origin or function.
(92) Likewise, the incorporation of at least two pigments with different MAl.sub.2O.sub.4:X nanocrystal size gives rise to different phosphorescent and Raman responses, which allows establishing an identification code of the security article.
(93) In a particular embodiment, the security article comprises at least two nanostructured phosphorescent pigments as defined above with different MAl.sub.2O.sub.4:X nanocrystal size.
(94) The term security article refers to any article of the authenticity of which is to be assured or the origin or function of which is to be determined, such as security paper, an envelope, a check, a promissory note, a banknote, an identity card, a passport, a ticket, a seal, a pass, a certificate, tags or label identifying pharmaceutical products, textiles, electronic devices, jewelry, works of art, tobacco, alcoholic beverages or CD/DVDs. The nanostructured phosphorescent pigment of the present invention can be integrated both in the mass of the security article and on its surface or as a surface coating.
(95) The term security article also includes security documents such that a security article can comprise or consist of one or more security documents. A security document is therefore a security article which is formed by a specific substrate usually in paper or plastic format, whereas the security article can generally contain very different substrates, including paper or plastic.
(96) In a particular embodiment, the security article comprising the nanostructured phosphorescent pigment as defined above integrated therein is a security document.
(97) The term security article also includes security elements such that a security article can comprise or consist of one or more security elements. The term security element refers to an element which is integrated in a security document or article for the purpose of authenticating same.
(98) In a particular embodiment, the present invention relates to a security article comprising the nanostructured phosphorescent pigment as defined above where the pigment is integrated inside a security element.
(99) An example of security article is a passport (formed by different substrates such as cardboard, paper, plastic film, chip) containing a collection of security documents (or articles) (page containing the identification data, inside pages for visas, etc) and security elements (for example, fluorescent thread for sewing the book). In turn, the mentioned security documents integrating same (pages containing data) can have several security elements (fluorescent fibrils in the mass of the paper, security thread in the inside pages, printed inks, adhered holographic sheets, etc). An example of security article formed by a specific substrate, for example a piece of paper, can be a check having affixed thereon the signature of the owner of the money to be withdrawn from the banking entity and other related data with other information pre-printed thereon. Said check is considered a document. This document can contain different security elements in the mass of the paper or on the surface thereof from printing with the security inks used, etc.
EXAMPLES
(100) The present invention will now be described by means of examples which serve to illustrate performing and testing of illustrative embodiments. However, it is understood that the present invention is in no way limited to the following examples.
Example 1: Reference Material Characterization
(101) The commercial SrAl.sub.2O.sub.4:Eu,Dy-based material was referred to as reference material and was supplied by Jinan Chenghao Technology Co., Ltd.
(102) The phosphorescence of the material was measured with a Flurolog 3 spectrofluorometer (FL32iHR, Horiba Jobin Yvon) equipped with a 450 W xenon lamp as the excitation source. The emission spectrum for the reference material was acquired by causing the excitation of the sample with an excitation wavelength equal to 380 nm (.sub.EXC=380 nm). The sample in the form of power was put in a quartz cuvette and the incident radiation was focused on the surface of the sample. The monochromatic radiation obtained was directed towards a semi-transparent mirror, where 10% of the intensity was collected by a photodiode (Signal R, Units: mA). The radiation went through a second monochromator (emission monochromator) and was collected with a R2658P photomultiplier (Hamamatsu) (Signal S, Units: cps (counts per second)). The signal considered was the signal recorded as S/R (cps/mA) since the linear response of the photomultiplier and photodiode is verified in this signal.
(103) The reference material had a centered wide emission band of about =510 nm (green) corresponding to the allowed spin transition 4f.sup.65d.sup.1.fwdarw.4f.sup.7(.sup.8S.sub.7/2) of Eu.sup.2+ (
(104) The luminance value (cd/m.sup.2) of the material was obtained by means of an LS-100 luminance meter of Konica Minolta following the DIN 67510-1 standard and by activating the material by means of an OSRAM lamp (XB04450W) simulating the conditions of 1 solar luminosity (1367 W m.sup.2). The intensity collected 1 minute after interruption of excitation corresponds to 30 cd/m.sup.2.
(105) The reference material was ground by means of the high-energy dry milling (HEDM) process for 5, 10 and 25 minutes and by means of a low-energy dry milling (LEDM) process described in [Rojas-Hernandez, R. E. et al. RSC Adv. 2015, 5, 42559]. A photoluminescence intensity of 10.42 E.sup.+06 (cps/mA) is obtained for the reference material.
(106)
Example 2. SrAl.SUB.2.O.SUB.4.:Eu,Dy Synthesis and Characterization by Means of Synthesis in the Presence of Salts and -Al.SUB.2.O.SUB.3.a Having a Particle Size of 0.1 m
(107) A pigment was synthesized by means of synthesis in the presence of a salt used in a molten salt process, SrCO.sub.3, an alumina precursor (-Al.sub.2O.sub.3) having a particle size of 0.1 m and rare earth precursors Eu.sub.2O.sub.3 and Dy.sub.2O.sub.3. A molar concentration of 0.02 of Eu and 0.01 of Dy was incorporated. The salt:(SrAl.sub.2O.sub.4:X) ratio is comprised within a molar ratio of 1:1 to 5:1, preferably the ratio of 3:1. The materials were synthesized for 2 hours in a N.sub.2H.sub.2 atmosphere using temperatures from 800 to 1200 C.
(108)
(109) SrCO.sub.3 breaks down completely after 900 C. The material synthesized at 900 C. (
(110)
Example 3. SrAl.SUB.2.O.SUB.4.:Eu,Dy Synthesis and Characterization by Means of Synthesis in the Presence of Salts and -Al.SUB.2.O.SUB.3.a Having a Particle Size of 6 m
(111) A pigment was synthesized at 1000 C. for 2 hours in N.sub.2H.sub.2 for a salt:(SrAl.sub.2O.sub.4:X) ratio corresponding to 3:1 using -Al.sub.2O.sub.3a having a particle size of 6 m as alumina precursor (referred to as: SAO-6 m Al.sub.2O.sub.3).
(112)
(113)
(114) The Raman analysis (
(115)
(116)
Example 4. SrAl.SUB.2.O.SUB.4.:Eu,Dy Synthesis and Characterization by Means of Synthesis in the Presence of Salts and Reactive -Al.SUB.2.O.SUB.3
(117) A SrAl.sub.2O.sub.4:Eu,Dy pigment was synthesized by means of a molten salt process with a salt:(SrAl.sub.2O.sub.4:Eu,Dy) ratio of 3:1 for 2 hours in a N.sub.2H.sub.2 atmosphere using a temperature of 1000 C. and using -Al.sub.2O.sub.3 as alumina precursor and an excess of this alumina (Al.sub.2O.sub.3:SrCO.sub.3 ratio of 2) is incorporated (Material referred to as: SAO--Al.sub.2O.sub.3 Al/Sr=2). Furthermore, 1.25, 2.5, 3.75 and 5% by weight of ZnO are incorporated (Material referred to as: SAO--Al.sub.2O.sub.3 Al/Sr=2+% ZnO).
(118)
(119) It is observed that the emission spectrum (
Example 5. Properties of the Reference Material in Comparison with the Results of the Materials Synthesized in Examples 2-4
(120) Table 1 lists the different properties of the synthesized materials in comparison with the reference material.
(121) TABLE-US-00001 TABLE 1 Properties of the reference material in comparison with the results of the materials synthesized in Examples 2-4 and the materials synthesized by means of molten salts referred to as (13) SAO MS 6 m Al.sub.2O.sub.3 (Al/Sr = 1) of Example 3, (14) SAO MS 6 m Al.sub.2O.sub.3 (Al/Sr = 2) of Example 3 and (15) SrAl.sub.2O.sub.4:Eu,Dy pigment of Example 4 (Al/Sr = 2) + 5% ZnO. Crystal Photolumi- % of lite nescence photolumi- Particle size intensity nescence size d.sub.50 Sample (nm) (cps/mA) intensity (m) Reference 108 10.42E+06 100 20 SAO MS 6 m 50 8.74E+06 83 10 Al.sub.2O.sub.3 (Al/Sr = 1) of Example 3 SAO MS 6 m 51 9.38E+06 90 10 Al.sub.2O.sub.3 (Al/Sr = 2) of Example 3 SrAl.sub.2O.sub.4:Eu,Dy 30 6.98E+06 67 0.1 pigment of Example 4(Al/Sr = 2) + 5% ZnO
(122)
(123) The color and brightness of the samples were obtained in the CIEL*a*b* system, which is the most widely used uniform color space for determining surface color. This system is made up of coordinates L*, measuring the lightness of the color from white (L*=100) to black (L*=0), coordinate a*, ranging from green (a*) to red (+a*), and coordinate b*, going from blue (b*) to yellow (+b*). Table 2 shows the result with the different CIEL*a*b* space color coordinates for the standard referred to as white. The difference in color between two samples can be analyzed by means of tolerance (E*).
(124) TABLE-US-00002 TABLE 2 Values of the color coordinates (L*, a* and b*) and the difference in color between the measured material and white standard (E*). Tolerance Sample a* b* L* value E* White standard 0.06 0.1 99.41 Reference 5.28 9.36 93.58 12.28 SAO MS 6 m Al.sub.2O.sub.3 (Al/Sr = 1) 0.56 5.66 94.12 7.84 of Example 3 SAO MS 6 m Al.sub.2O.sub.3 (Al/Sr = 2) 6.12 10.56 95.54 6.94 of Example 3 SrAl.sub.2O.sub.4:Eu,Dy pigment of 1.71 2.77 93.92 6.42 Example 4 (Al/Sr = 2) + 5% ZnO
(125) The pigments of the invention showed an improvement in terms of color coordinates since they are closer to white. This aspect along with the particle size is of particular interest for use thereof in printing security articles.
Example 6. Example of Raman Response of the SrAl.SUB.2.O.SUB.4.:Eu,Dy Pigment in Security Articles
(126)
(127)
(128)
Example 7. Use of the SrAl.SUB.2.O.SUB.4.:Eu,Dy Pigment in Printing Security Tags
(129) The installations and materials used to carry out this example were a silk screen printing machine manufactured by Stork, a silk screen manufactured by Stork, natural cellulose-based fibrous paper manufactured in a round paper machine, iridescent ink, anti-foaming agent and SrAl.sub.2O.sub.4:Eu,Dy pigment synthesized by means of a molten salt process with a salt:(SrAl.sub.2O.sub.4:Eu,Dy) ratio of 3:1 synthesized from alumina of 6 m for 2 hours in a N.sub.2H.sub.2 atmosphere, using a temperature of 1000 C. and using an Al.sub.2O.sub.3:SrCO.sub.3 ratio of 1, and incorporated to an aqueous medium for obtaining a suspension of particles dispersed on kaolin microparticles with a solid content of 40% by weight.
(130) The main characteristics of the indicated installations and materials are provided in detail below: Conditions of the printing machine on each side of the paper: Drying tunnel temperature: 145 C. Machine speed: 70 m/min Suction speed: 2500 rpm Blowing speed: 2400 rpm Residual moisture of the paper after drying: 6.5% Conditions of the silk screen: Reference: RSI900 Development: 25 2/8 Mesh: 105 Open area: 15% Thickness: 105 micron Width: 910 mm Conditions of the iridescent ink and additives: Commercial name of the ink: Silk screen printing ink 5WR1241 Commercial name of the anti-foaming agent: Additive 880775 Commercial name of the cross-linking agent: Additive 370010 Ink viscosity after adding the cross-linking agent: 20 s CP4 Printing ink viscosity: 18 s CP4 Main conditions of the paper: Fibrous composition: 100% cotton cellulose Grammage: 90 g/m.sup.2 Grammage after the varnishing process: 96 g/m.sup.2 Thickness: 115 microns Bendtsen smoothness on the felt side: <700 ml/min Bendtsen smoothness on the fabric side: <800 ml/min Bendtsen porosity: <20 ml/min Bendtsen porosity after creasing: <140 ml/min Cobb value: 40-70 g/cm.sup.2 Ash: <3% Opacity: 84%
Implementation Method
(131) Once the printing machine has been started up for attaining the established machine conditions, the silk screen was placed, the reel of paper was placed on the unwinding shaft and the paper web was distributed in the machine circuit, the ink was mixed with the cross-linking agent at a proportion of 1.5% by weight of the latter over the former, under gentle stirring conditions in the 20 kg ink drum itself. 100 ml of the pigment and anti-foaming agent were added to this mixture. Once the perfect dispersion of the components was assured, the content of the drum was pumped to the inkwell of the printing machine and the paper was positioned on the printing silk screen starting the printing of the ink through the holes of the screen according to the graphical design established therein on one of the sides, controlling the final moisture of the paper, ink viscosity and the machine conditions throughout the printing process.
Example 8. Use of the SrAl.SUB.2.O.SUB.4.:Eu,Dy Pigment in Coated Paper of Self-Adhesive Security Tags
(132) A knife coating machine which is supplied with a coating slip previously prepared according to the following formula specially indicated for use of the coated paper in offset printing techniques for self-adhesive security tags was used to carry out this example: Mineral fillers: 80% calcium carbonate (Ref Albacar HO Slurry manufactured by Specialty Minerals) and 20% kaolin (Reference Supragloss 95 manufactured by lmerys) to obtain 50 parts of the slip. Synthetic binder: 10 parts butadiene styrene latex (Reference Styronal D-517 manufactured by BASF) Synthetic co-binder: 2 parts (reference Acronal 700 L manufactured by BASF) Thickener: 1 part carboxymethyl cellulose Insolubilizing agent: 1 part (Reference Basocoll OV manufactured by BASF) Additives: 1 part sodium hydroxide Aqueous dispersion of the SrAl.sub.2O.sub.4:Eu,Dy pigment: 1 part Water: The rest up to 100 parts.
(133) The self-adhesive paper which is used for being coated has the following characteristics: Total grammage: 200 g/m.sup.2 Siliconized support grammage: 82 g/m.sup.2 Adhesive grammage: 20 g/m.sup.2 Fibrous composition of the front: 100% cellulose from mechanical pulp Conditions of the coating machine: Drying tunnel temperature: 145 C. Machine speed: 150 m/min Residual moisture of the paper after drying: 6.5% Characteristics of the coated paper: Total grammage: 220 g/m.sup.2 Coated layer grammage: 20 g/m.sup.2 Bekk smoothness on the coated side: 200 sec Ash: 20% Opacity: 84% Implementation method:
(134) Once the coating machine has been started up for attaining the established machine conditions, the reel of paper was placed on the unwinding shaft and the paper web was distributed in the machine circuit, the coating slip was metered into the tray of the knife coater and the coating process was started according to the established machine conditions until using up the reel. After the coating process, the reel of paper was calendered until achieving the established smoothness and cut to the format necessary for the subsequent process for sheet or reel printing of the security tags.
Example 9. Thin SrAl.SUB.2.O.SUB.4.:Eu,Dy Film Synthesis and Characterization by Means of Synthesis in the Presence of Salts on Polycrystalline Alumina Plates
(135) Thin SrAl.sub.2O.sub.4:Eu,Dy films were synthesized using sintered polycrystalline alumina plates as Al.sub.2O.sub.3 substrate.
(136) To that end, a mixture of SrCO.sub.3, Eu.sub.2O.sub.3, Dy.sub.2O.sub.3 and (NaClKCl).sub.e was prepared and homogenized in a planetary mill for 8 hours with 40% by weight of an organic vehicle consisting of -terpineol, ethyl cellulose and [2-(2-butoxy.etoxy-ethyl)]. A pulp which was deposited on the alumina substrate by silk screen printing at 1000 C. for 2 hours in a N.sub.2H.sub.2 atmosphere was obtained.
(137)
(138)
(139)
Example 10. CaAl.SUB.2.O.SUB.4.:Eu,Nd Synthesis and Characterization by Means of Synthesis in the Presence of Salts and -Al.SUB.2.O.SUB.3 .Having a Particle Size of 6 m
(140) A pigment was synthesized at 1000, 1200 and 1400 C. for 2 hours in N.sub.2H.sub.2 for a salt:(CaAl.sub.2O.sub.4:X) ratio corresponding to 3:1 using as alumina precursor -Al.sub.2O.sub.3 having a particle size of 6 m.
(141)
Example 11. SrAl.SUB.2.O.SUB.4.:Eu,Dy Synthesis and Characterization by Means of Synthesis in the Presence of Salts and -Al.SUB.2.O.SUB.3 .Having a Particle Size of 6 m
(142) A pigment was synthesized at 1200 and 1400 C. for 2 hours in N.sub.2H.sub.2 for a salt:(SrAl.sub.2O.sub.4:X) ratio corresponding to 3:1 using -Al.sub.2O.sub.3 having a particle size of 6 m as alumina precursor.
(143)
(144)