Phthalocyanine Compounds for Sensing Carbon Dioxide and Use
20190072530 ยท 2019-03-07
Inventors
- Yan Yan (Singapur, SG)
- Anup Lohani (Singapore, SG)
- Suresh Palale (Singapore, SG)
- Sheeja Bahulayan (Singapore, SG)
- Hui Kheng Karen Goh (Singapore, SG)
- Felicia Fibiani Permatasari (Subaraya, East Java, ID)
Cpc classification
C09B47/063
CHEMISTRY; METALLURGY
G01N27/227
PHYSICS
G01N27/125
PHYSICS
International classification
C09B47/06
CHEMISTRY; METALLURGY
G01N27/414
PHYSICS
Abstract
The invention relates to carbon dioxide sensing compounds. In particular, the present invention relates to said sensing compounds comprising a phathalocyanine or a metal phthalocyanine. Furthermore, the invention relates to the tuning sensitivity of the phathalocyanine or the metal phthalocyanine by incorporation of amine groups and spacers. The sensing layers can be integrated on various transducers like a chemiresistor, a capacitor, a field effect transistor (FET), an optical-based sensor, or a mass-based sensor.
Claims
1. Use of a compound of Formula (Ia) or (Ib) ##STR00007## as a carbon dioxide sensor, wherein: in Formula (Ia) M is any suitable metallic species; and each of R.sup.1 to R.sup.16 is independently a H, a halogen, or an organic moiety of Formula (II)
XYNR.sup.17R.sup.18(II), wherein: X is a direct bond, SO.sub.2, SO, PO.sub.3, or a heteroatom selected from the group consisting of N, O, P, S, and Se; Y is absent or if present, Y is a linear or branched, substituted or unsubstituted C.sub.1-C.sub.10 alkyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkenyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkynyl; linear or branched, substituted or unsubstituted alkoxy; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkenyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkenyl; substituted or unsubstituted C.sub.6-C.sub.10 aryl; substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl; and each of R.sup.17 and R.sup.18 is a H or a linear or branched, substituted or unsubstituted C.sub.1-C.sub.22 alkyl; or R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl, with the proviso that one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II).
2. Use of claim 1, wherein one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: X is O, S, or SO.sub.2; Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; and R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl.
3. Use of claim 2, wherein R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine, imidazole, pyrazole, 1,2,4-triazole, 1,2,3-triazole, or carbazole group.
4. Use of claim 1, wherein one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: X is O, S, or SO.sub.2; Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; R.sup.17 is H; and R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl.
5. Use of claim 1, wherein one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: X is O, S, or SO.sub.2; Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; both R.sup.17 and R.sup.18 are H.
6. Use of claim 1, wherein one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: X is a direct bond; Y is absent; R.sup.17 is H; and R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl.
7. Use of claim 6, wherein the one or more of R.sup.1 to R.sup.16 that are not the organic moiety of Formula (II) are independently a H or a halogen.
8. Use of claim 1, wherein one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: X is a direct bond; Y is absent; R.sup.17 is H; and R.sup.18 is a linear hydroxyl substituted C.sub.1-C.sub.22 alkyl.
9. Use of claim 1, wherein the compound of Formula (Ia) or (Ib) is comprised as a sensing layer in a chemiresistor, a capacitor, a field effect transistor (FET), an optical-based sensor, or a mass-based sensor.
10. A sensor for detecting carbon dioxide, the sensor comprising a compound of Formula (Ia) or (Ib) ##STR00008## wherein: in Formula (Ia) M is any suitable metallic species; and each of R.sup.1 to R.sup.16 is independently a H, a halogen, or an organic moiety of Formula (II)
XYNR.sup.17R.sup.18(II), wherein: X is a direct bond, SO.sub.2, SO, PO.sub.3, or a heteroatom selected from the group consisting of N, O, P, S, and Se; Y is absent or if present, Y is a linear or branched, substituted or unsubstituted C.sub.1-C.sub.10 alkyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkenyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkynyl; linear or branched, substituted or unsubstituted alkoxy; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkenyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkenyl; substituted or unsubstituted C.sub.6-C.sub.10 aryl; substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl; and each of R.sup.17 and R.sup.18 is a H or a linear or branched, substituted or unsubstituted C.sub.1-C.sub.22 alkyl; or R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl, with the proviso that one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In the drawings, like reference characters generally refer to the same parts throughout the different views. The drawings are not necessarily drawn to scale, emphasis instead generally being placed upon illustrating the principles of various embodiments. In the following description, various embodiments of the invention are described with reference to the following drawings.
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION
[0032] The following detailed description refers to the accompanying drawings that show, by way of illustration, specific details and embodiments in which the invention may be practised. These embodiments are described in sufficient detail to enable those skilled in the art to practise the invention. Other embodiments may be utilized and chemical or structural changes may be made without departing from the scope of the invention. The various embodiments are not necessarily mutually exclusive, as some embodiments can be combined with one or more other embodiments to form new embodiments.
[0033] As described in previous paragraphs, compounds of phthalocyanine and metal phthalocyanine (MPc) demonstrate various advantages over other organic compounds as a carbon dioxide sensing material. For example, metal phthalocyanine has good processability, thermal stability, tunability, and high selectivity achievable by tuning its central cavity and more particularly, its substitution groups.
[0034] Accordingly, it is herein described compounds of phthalocyanine and metal phthalocyanine chemical platform for selective and sensitive CO.sub.2 sensing. Utilizing the large design space of the phthalocyanine layer, the sensitivity of phthalocyanine compounds to CO.sub.2 can be easily enhanced by modifying its substitution groups and the respective substitution number. Taking together the mentioned advantages of phthalocyanine compounds over other materials, functionalized phthalocyanine compounds are good candidates for CO.sub.2 sensing layer. Changes caused by CO.sub.2 interaction can be measured by means of a workfunction, capacitance, mass, absorption wavelengths etc. such that the resultant sensing layer is compatible with various transducers including but not limited to a chemiresistor, a capacitor, a field effect transistor (FET), an optical-based sensor, or a mass-based sensor.
[0035] Additionally, functionalized phthalocyanine compounds can react directly and reversibly with CO.sub.2 via the side chains, i.e. the substitution groups, which leads to higher sensitivity and selectivity. Furthermore, phthalocyanine compounds offers a large material design space by affording the ability to change the functional substitution groups, which translates to a superior tunability.
[0036] It is known that primary amine group (NH.sub.2) and secondary amine group (NHR) react with CO.sub.2 in two different ways (
[0037] The nature of the reaction generating carbamate is Lewis interaction (
[0038] The interaction, and therefore detection, of carbon dioxide and the phthalocyanine sensing compound is based on the reaction between the carbon dioxide and the amine groups substituted on the phthalocyanine.
[0039] A stronger basicity in the amine group is preferred for the CO.sub.2 sensing. This thus means that any interaction which reduces the basicity of the amine group (i.e. electron density on nitrogen atom) is likely to sacrifice on the sensitivity to CO.sub.2 and should be avoided. As an illustration, a simple amine-functionalized MPc is one with amine groups directly linked to the MPc (Type 1 in
[0040] Based on the above design parameters, present invention therefore relates to a use of a compound of Formula (Ia) or (Ib)
##STR00003##
as a carbon dioxide sensor,
wherein:
in Formula (Ia) M is any suitable metallic species; and
each of R.sup.1 to R.sup.16 is independently a H, a halogen, or an organic moiety of Formula (II)
XYNR.sup.17R.sup.18(II), [0041] wherein: [0042] X is a direct bond, SO.sub.2, SO, PO.sub.3, or a heteroatom selected from the group consisting of N, O, P, S, and Se; [0043] Y is absent or if present, Y is a linear or branched, substituted or unsubstituted C.sub.1-C.sub.10 alkyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkenyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkynyl; linear or branched, substituted or unsubstituted alkoxy; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkenyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkenyl; substituted or unsubstituted C.sub.6-C.sub.10 aryl; substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl; and [0044] each of R.sup.17 and R.sup.18 is a H or a linear or branched, substituted or unsubstituted C.sub.1-C.sub.22 alkyl; or [0045] R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl, with the proviso that one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II).
[0046] It is apparent that Formula (Ia) relates to a metal phthalocyanine while Formula (Ib) relates to a phthalocyanine compound. Unless stated otherwise, references to phthalocyanine include references to metal phthalocyanine.
[0047] Accordingly, the spacer moiety in the chemical moiety of Formula (II) is XY.
[0048] In present context, the term aliphatic, alone or in combination, refers to a straight chain (i.e. linear) or branched chain hydrocarbon comprising at least one carbon atom. Aliphatics include alkyls, alkenyls, and alkynyls. In certain embodiments, aliphatics are optionally substituted, i.e. substituted or unsubstituted. The term optionally substituted or substituted or unsubstituted refers to a group in which none, one, or more than one of the hydrogen atoms have been replaced with one or more groups such as, but are not limited to, alkyl, heteroalkyl, haloalkyl, heterohaloalkyl, cycloalkyl, aryl, arylalkyl, heteroaryl, or non-aromatic heterocycle.
[0049] Aliphatics include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, tert-butyl, pentyl, hexyl, ethenyl, propenyl, butenyl, ethynyl, butynyl, propynyl, and the like, each of which may be optionally substituted. As used herein, aliphatic is not intended to include cyclic groups.
[0050] In present context, the term alkyl, alone or in combination, refers to a fully saturated aliphatic hydrocarbon. The alkyl may be linear or branched. In certain embodiments, alkyls are optionally substituted. In certain embodiments, an alkyl comprises 1 to 22 carbon atoms, for example 1 to 10 carbon atoms, wherein (whenever it appears herein in any of the definitions given below) a numerical range, such as 1 to 22 or C.sub.1-C.sub.22, refers to each integer in the given range, e.g. C.sub.1-C.sub.22 alkyl means that an alkyl group comprising only 1 carbon atom, 2 carbon atoms, 3 carbon atoms, 4 carbon atoms, 5 carbon atoms, 6 carbon atoms, 7 carbon atoms, 8 carbon atoms, 9 carbon atoms, 10 carbon atoms, and up to 22 carbon atoms. Examples of alkyl groups include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, tert-amyl, pentyl, hexyl, heptyl, octyl and the like.
[0051] In present context, the term alkoxy, alone or in combination, refers to an aliphatic hydrocarbon having an alkyl-O moiety. The alkoxy may be linear or branched. In certain embodiments, alkoxy groups are optionally substituted. In various embodiments, the alkoxy comprises 1 to 10 carbon atoms, i.e. C.sub.1-C.sub.10 alkoxy. Examples of alkoxy groups include, but are not limited to, methoxy, ethoxy, propoxy, butoxy and the like.
[0052] In present context, the term alkenyl, alone or in combination, refers to an aliphatic hydrocarbon having one or more carbon-carbon double-bonds, such as two or three carbon-carbon double-bonds. The alkenyl may be linear or branched. In certain embodiments, alkenyls are optionally substituted, i.e. substituted or unsubstituted. In certain embodiments, an alkenyl comprises 2 to 10 carbon atoms. C.sub.2-C.sub.10 alkenyl means that an alkenyl group comprising only 2 carbon atoms, 3 carbon atoms, 4 carbon atoms, 5 carbon atoms, 6 carbon atoms, 7 carbon atoms, 8 carbon atoms, 9 carbon atoms, or 10 carbon atoms. Examples of alkenyls include, but are not limited to, ethenyl, propenyl, butenyl, 1,4-butadienyl, pentenyl, hexenyl, 4-methylhex-1-enyl, 4-ethyl-2-methylhex-1-enyl and the like.
[0053] In present context, the term alkynyl, alone or in combination, refers to an aliphatic hydrocarbon having one or more carbon-carbon triple-bonds, such as two or three carbon-carbon triple-bonds. The alkynyl may be linear or branched. In certain embodiments, alkynyls are optionally substituted, i.e. substituted or unsubstituted. In certain embodiments, an alkynyl comprises 2 to 10 carbon atoms. C.sub.2-C.sub.10 alkynyl means that an alkynyl group comprising only 2 carbon atoms, 3 carbon atoms, 4 carbon atoms, 5 carbon atoms, 6 carbon atoms, 7 carbon atoms, 8 carbon atoms, 9 carbon atoms, or 10 carbon atoms. Examples of alkynyls include, but are not limited to, ethynyl, propynyl, butynyl, and the like.
[0054] In present context, the term non-aromatic ring refers to a group comprising a covalently closed ring that is not aromatic. The term alicyclic refers to a group comprising a non-aromatic ring wherein each of the atoms forming the ring is a carbon atom. Alicyclic groups may be formed by three, four, five, six, seven, eight, nine, or more than nine carbon atoms. In certain embodiments, alicyclics are optionally substituted, i.e. substituted or unsubstituted. In certain embodiments, an alicyclic comprises one or more unsaturated bonds, such as one or more carbon-carbon double-bonds. Alicyclics include cycloalkyls and cycloalkenyls. Examples of alicyclics include, but are not limited to, cyclopropane, cyclobutane, cyclopentane, cyclopentene, cyclopentadiene, cyclohexane, cyclohexene, 1,3-cyclohexadiene, 1,4-cyclohexadiene, cycloheptane, and cycloheptene.
[0055] In present context, the term aryl refers to an aromatic ring wherein each of the atoms forming the ring is a carbon atom. Aryl rings may be formed by five, six, seven, eight, nine, or more than nine carbon atoms. Aryl groups may be optionally substituted.
[0056] In present context, the term heteroaryl refers to an aromatic heterocycle. Heteroaryl rings may be formed by three, four, five, six, seven, eight, nine, or more than nine atoms. Heteroaryls may be optionally substituted. Examples of heteroaryl groups include, but are not limited to, aromatic C.sub.3-C.sub.15 heterocyclic groups comprising one oxygen or sulfur atom or up to four nitrogen atoms, or a combination of one oxygen or sulfur atom and up to two nitrogen atoms, and their substituted as well as benzo- and pyrido-fused derivatives, for example, connected via one of the ring-forming carbon atoms.
[0057] As mentioned in earlier paragraphs, M may be any suitable metallic species that form the MPc. For example, M may be, but is not limited to, selected from the group consisting of Cu.sup.2+, Mn.sup.2+, Mg.sup.2+, Ca.sup.2+, Zn.sup.2+, Ni.sup.2+, Pb.sup.2+, Co.sup.2+, Fe.sup.3+, Al.sup.3+, Ga.sup.3+, Ce.sup.3+, Sc.sup.3+, Zr.sup.4+, Ti.sup.4+, Sn.sup.4+, and V.sup.5+.
[0058] Since the carbamate complex formation requires two amine groups to be present (
[0059] In various embodiments, one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein:
[0060] X is O, S, or SO.sub.2; Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; and R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl.
[0061] For example, R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine group, an imidazole group, a pyrazole group, a 1,2,4-triazole group, a 1,2,3-triazole group, or a carbazole group.
[0062] For example, R.sup.3, R.sup.7, R.sup.11, and R.sup.15 may be X(CH.sub.2).sub.nNR.sup.17R.sup.18 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine group, an imidazole group, a pyrazole group, a 1,2,4-triazole group, a 1,2,3-triazole group, or a carbazole group, while R.sup.1, R.sup.2, R.sup.4, R.sup.5, R.sup.6, R.sup.8, R.sup.9, R.sup.10, R.sup.12, R.sup.13, R.sup.14 and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0063] In another example, R.sup.4, R.sup.8, R.sup.12, and R.sup.16 may be X(CH.sub.2).sub.nNR.sup.17R.sup.18 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine group, an imidazole group, a pyrazole group, a 1,2,4-triazole group, a 1,2,3-triazole group, or a carbazole group, while R.sup.1, R.sup.2, R.sup.3, R.sup.5, R.sup.6, R.sup.7, R.sup.9, R.sup.10, R.sup.11, R.sup.13, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0064] In a further example, R.sup.3, R.sup.4, R.sup.7, R.sup.8, R.sup.11, R.sup.12, R.sup.15 and R.sup.16 may be X(CH.sub.2).sub.nNR.sup.17R18 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine group, an imidazole group, a pyrazole group, a 1,2,4-triazole group, a 1,2,3-triazole group, or a carbazole group, while R.sup.1, R.sup.2, R.sup.5, R.sup.6, R.sup.9, R.sup.10, R.sup.13 and R.sup.14 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0065] In yet another embodiment, R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 may be X(CH.sub.2).sub.nNR.sup.17R.sup.18 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a piperazine group, an imidazole group, a pyrazole group, a 1,2,4-triazole group, a 1,2,3-triazole group, or a carbazole group, while R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0066] In various embodiments, one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein:
[0067] X is O, S, or SO.sub.2; Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; R.sup.17 is H; and R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl.
[0068] For example, R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 may be X(CH.sub.2).sub.nNH(CH.sub.2).sub.nCH.sub.3 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0069] In another example, R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 may be X(CH.sub.2).sub.nNH(CH.sub.2).sub.nCH.sub.3 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14 and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0070] In a further example, R.sup.4, R.sup.8, R.sup.12, and R.sup.16 may be X(CH.sub.2).sub.nNH(CH.sub.2).sub.nCH.sub.3 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.2, R.sup.3, R.sup.5, R.sup.6, R.sup.7, R.sup.9, R.sup.10, R.sup.11, R.sup.13, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0071] In yet another example, R.sup.3, R.sup.7, R.sup.11, and R.sup.15 may be X(CH.sub.2).sub.nNH(CH.sub.2).sub.nCH.sub.3 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.2, R.sup.4, R.sup.5, R.sup.6, R.sup.8, R.sup.9, R.sup.10, R.sup.12, R.sup.13, R.sup.14, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0072] In various embodiments, one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: [0073] X is O, S, or SO.sub.2; [0074] Y is a linear substituted or unsubstituted C.sub.1-C.sub.10 alkyl; [0075] both R.sup.17 and R.sup.18 are H.
[0076] For example, R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 may be X(CH.sub.2).sub.nNH.sub.2 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0077] In another example, R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 may be X(CH.sub.2).sub.nNH.sub.2 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0078] In a further example, R.sup.4, R.sup.8, R.sup.12, and R.sup.16 may be X(CH.sub.2).sub.nNH.sub.2 wherein X is O, S, or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.2, R.sup.3, R.sup.5, R.sup.6, R.sup.7, R.sup.9, R.sup.10, R.sup.11, R.sup.13, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0079] In yet another example, R.sup.3, R.sup.7, R.sup.11, and R.sup.15 may be X(CH.sub.2).sub.nNH.sub.2 wherein X is O, S, R.sup.10, R.sup.12, R.sup.13, R.sup.14, and R.sup.16 or SO.sub.2, n is any integer from 1 to 6, while R.sup.1, R.sup.2, R.sup.4, R.sup.5, R.sup.6, R.sup.8, R.sup.9, are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0080] In various embodiments, one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: [0081] X is a direct bond; [0082] Y is absent; [0083] R.sup.17 is H; and [0084] R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl, and preferably the one or more of R.sup.1 to R.sup.16 that are not the organic moiety of Formula (II) are independently a H or a halogen.
[0085] For example, R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 may be NHR.sup.18 wherein R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl while R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0086] In another example, R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 may be NHR.sup.18 wherein R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl while R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14 and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0087] In a further example, R.sup.4, R.sup.8, R.sup.12, and R.sup.16 may be NHR.sup.18 wherein R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl while R.sup.1, R.sup.2, R.sup.3, R.sup.5, R.sup.6, R.sup.7, R.sup.9, R.sup.10, R.sup.11, R.sup.13, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0088] In yet another example, R.sup.3, R.sup.7, R.sup.11, and R.sup.15 may be NHR.sup.18 wherein R.sup.18 is a linear substituted or unsubstituted C.sub.1-C.sub.22 alkyl while R.sup.1, R.sup.2, R.sup.4, R.sup.5, R.sup.6, R.sup.8, R.sup.9, R.sup.10, R.sup.12, R.sup.13, R.sup.14, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0089] In various embodiments. one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II), wherein: [0090] X is a direct bond; [0091] Y is absent; [0092] R.sup.17 is H; and [0093] R.sup.18 is a linear hydroxyl substituted C.sub.1-C.sub.22 alkyl, and preferably the one or more of R.sup.1 to R.sup.16 that are not the organic moiety of Formula (II) are independently a H or a halogen.
[0094] For example, R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 may be NHR.sup.18 wherein R.sup.18 is (CH.sub.2).sub.nOH, n is 1 to 8, while R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0095] In another example, R.sup.1, R.sup.4, R.sup.5, R.sup.8, R.sup.9, R.sup.12, R.sup.13, and R.sup.16 may be NHR.sup.18 wherein R.sup.18 is (CH.sub.2).sub.nOH, n is 1 to 8, while R.sup.2, R.sup.3, R.sup.6, R.sup.7, R.sup.10, R.sup.11, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0096] In a further example, R.sup.4, R.sup.8, R.sup.12, and R.sup.16 may be NHR.sup.18 wherein R.sup.18 is (CH.sub.2).sub.nOH, n is 1 to 8, while R.sup.1, R.sup.2, R.sup.3, R.sup.5, R.sup.6, R.sup.7, R.sup.9, R.sup.10, R.sup.11, R.sup.13, R.sup.14, and R.sup.15 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0097] In yet another example, R.sup.3, R.sup.7, R.sup.11, and R.sup.15 may be NHR.sup.18 wherein R.sup.18 is (CH.sub.2).sub.nOH, n is 1 to 8, while R.sup.1, R.sup.2, R.sup.4, R.sup.5, R.sup.6, R.sup.8, R.sup.9, R.sup.10, R.sup.12, R.sup.13, R.sup.14, and R.sup.16 are independently H or halogen such as fluorine (F), chlorine (Cl), bromine (Br), or iodine (I).
[0098] In various embodiments, use of the compound of Formula (Ia) or (Ib) may incude use as a sensing layer in various transducers like a chemiresistor, a capacitor, a field effect transistor (FET), an optical-based sensor, or a mass-based sensor.
[0099] In another aspect of the invention, a sensor for detecting carbon dioxide is disclosed.
[0100] The sensor comprises a compound of Formula (Ia) or (Ib)
##STR00004##
wherein:
in Formula (Ia) M is any suitable metallic species; and
each of R.sup.1 to R.sup.16 is independently a H, a halogen, or an organic moiety of Formula (II)
XYNR.sup.17R.sup.18(II), [0101] wherein: [0102] X is a direct bond, SO.sub.2, SO, PO.sub.3, or a heteroatom selected from the group consisting of N, O, P, S, and Se; [0103] Y is absent or if present, Y is a linear or branched, substituted or unsubstituted C.sub.1-C.sub.10 alkyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkenyl; linear or branched, substituted or unsubstituted C.sub.2-C.sub.10 alkynyl; linear or branched, substituted or unsubstituted alkoxy; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkyl; substituted or unsubstituted C.sub.3-C.sub.10 cycloalkenyl; substituted or unsubstituted C.sub.3-C.sub.10 heterocycloalkenyl; substituted or unsubstituted C.sub.6-C.sub.10 aryl; substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl; and [0104] each of R.sup.17 and R.sup.18 is a H or a linear or branched, substituted or unsubstituted C.sub.1-C.sub.22 alkyl; or [0105] R.sup.17 and R.sup.18 together with N in the organic moiety of Formula (II) form a substituted or unsubstituted C.sub.3-C.sub.10 heteroalicyclic ring or a substituted or unsubstituted C.sub.3-C.sub.15 heteroaryl, [0106] with the proviso that one or more of R.sup.1 to R.sup.16 are the organic moiety of Formula (II).
[0107] In order that the invention may be readily understood and put into practical effect, particular embodiments will now be described by way of the following non-limiting examples.
Examples
[0108] In Example 1, an amine-spacer-MPc and an adjoining-amine-spacer-MPc concepts are illustrated.
[0109] Layer A is a primary-amine-spacer functionalized MPc having structure as shown below. Layer B has adjoining primary-amine-spacer substitution and has a structure as shown below. Layer C has adjoining cyclic-amine-spacer substitution and has a structure as shown below.
##STR00005## ##STR00006##
[0110] To read out the change of work function, the Kelvin method was used. Gas measurement was carried out with synthetic air at room temperature (RT) with 50% relative humidity (RH) for CO.sub.2 concentration from 400 ppm (background in atmosphere) up to 2,000 ppm. As shown in
[0111] In Example 2, various amine-functionalized Type 1 MPc sensing layers are fabricated and tested (
[0112] In Example 3, various examples of MPc sensing layers with triazole are shown (
[0113] In Example 4, various examples of MPc sensing layers with imidazole are shown (
[0114] By comprising it is meant including, but not limited to, whatever follows the word comprising. Thus, use of the term comprising indicates that the listed elements are required or mandatory, but that other elements are optional and may or may not be present.
[0115] By consisting of is meant including, and limited to, whatever follows the phrase consisting of. Thus, the phrase consisting of indicates that the listed elements are required or mandatory, and that no other elements may be present.
[0116] The inventions illustratively described herein may suitably be practiced in the absence of any element or elements, limitation or limitations, not specifically disclosed herein. Thus, for example, the terms comprising, including, containing, etc. shall be read expansively and without limitation. Additionally, the terms and expressions employed herein have been used as terms of description and not of limitation, and there is no intention in the use of such terms and expressions of excluding any equivalents of the features shown and described or portions thereof, but it is recognized that various modifications are possible within the scope of the invention claimed. Thus, it should be understood that although the present invention has been specifically disclosed by preferred embodiments and optional features, modification and variation of the inventions embodied therein herein disclosed may be resorted to by those skilled in the art, and that such modifications and variations are considered to be within the scope of this invention.
[0117] By about in relation to a given numerical value, such as for temperature and period of time, it is meant to include numerical values within 10% of the specified value.
[0118] The invention has been described broadly and generically herein. Each of the narrower species and sub-generic groupings falling within the generic disclosure also form part of the invention. This includes the generic description of the invention with a proviso or negative limitation removing any subject matter from the genus, regardless of whether or not the excised material is specifically recited herein.
[0119] Other embodiments are within the following claims and non-limiting examples. In addition, where features or aspects of the invention are described in terms of Markush groups, those skilled in the art will recognize that the invention is also thereby described in terms of any individual member or subgroup of members of the Markush group.