Polymer electrolyte membrane, membrane electrode assembly comprising polymer electrolyte membrane and fuel cell comprising membrane electrode assembly
10050294 ยท 2018-08-14
Assignee
Inventors
- Young Sun Park (Daejeon, KR)
- Minkyu Min (Daejeon, KR)
- Hyuk Kim (Daejeon, KR)
- Seong Ho Choi (Daejeon, KR)
- Sangwoo Lee (Daejeon, KR)
- Doyoung Kim (Daejeon, KR)
Cpc classification
H01M8/1039
ELECTRICITY
H01M8/1027
ELECTRICITY
H01M2250/20
ELECTRICITY
H01M8/1067
ELECTRICITY
H01M8/1058
ELECTRICITY
H01M8/106
ELECTRICITY
H01M8/103
ELECTRICITY
H01M8/1062
ELECTRICITY
H01M8/1025
ELECTRICITY
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M8/1053
ELECTRICITY
H01M8/1065
ELECTRICITY
H01M8/1032
ELECTRICITY
H01M8/1044
ELECTRICITY
Y02T90/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H01M8/1025
ELECTRICITY
H01M8/1067
ELECTRICITY
H01M8/1053
ELECTRICITY
H01M8/1044
ELECTRICITY
H01M8/1058
ELECTRICITY
H01M8/1065
ELECTRICITY
Abstract
The present specification provides a polymer electrolyte membrane, a membrane electrode assembly including the polymer electrolyte membrane, and a fuel cell including the membrane electrode assembly.
Claims
1. A polymer electrolyte membrane comprising a mixed layer that includes an ion migration region and a hydrocarbon based support having a 3-dimensional network structure, wherein the ion migration region is greater than or equal to 40% by volume and less than or equal to 85% by volume with respect to a total volume of the mixed layer, wherein the ion migration region has a structure in which two or more cells including an ion-conducting material border 3 dimensionally, and an RH cycle limit is at least 20,000 cycles, wherein the support includes polyolefin, polyamide, polyester, polyacetal (or polyoxymethylene), polysulfide, polyvinyl alcohol, copolymers thereof and combinations thereof, wherein the cells are laminated in two or more layers in any one direction (x-axis direction), a direction vertical thereto (y-axis direction), and a thickness direction of the polymer electrolyte membrane (z-axis direction) from any surface horizontal to an upper surface of the polymer electrolyte membrane, wherein an average of maximum diameters of the cells is greater than or equal to 0.25 m and less than or equal to 0.4 m, and a standard deviation of maximum diameters of the cells is greater than or equal to 0.05 m and less than or equal to 0.2 m, and wherein the membrane includes cells having uniform sizes.
2. A polymer electrolyte membrane comprising a mixed layer that includes an ion migration region and a hydrocarbon based support having a 3-dimensional network structure, wherein the ion migration region is greater than or equal to 40% by volume and less than or equal to 85% by volume with respect to a total volume of the mixed layer, wherein the ion migration region has a structure in which two or more cells including an ion-conducting material border 3 dimensionally, and a maximum stress in a machine direction (MD) of the polymer electrolyte membrane is 200 kgf/cm.sup.2 or greater, wherein the support includes polyolefin, polyamide, polyester, polyacetal (or polyoxymethylene), polysulfide, polyvinyl alcohol, copolymers thereof and combinations thereof, wherein the cells are laminated in two or more layers in any one direction (x-axis direction), a direction vertical thereto (y-axis direction), and a thickness direction of the polymer electrolyte membrane (z-axis direction) from any surface horizontal to an upper surface of the polymer electrolyte membrane, wherein an average of maximum diameters of the cells is greater than or equal to 0.25 m and less than or equal to 0.4 m, and a standard deviation of maximum diameters of the cells is greater than or equal to 0.05 m and less than or equal to 0.2 m, and wherein the membrane includes cells having uniform sizes.
3. A polymer electrolyte membrane comprising a mixed layer that includes an ion migration region and a hydrocarbon based support having a 3-dimensional network structure, wherein the ion migration region is greater than or equal to 40% by volume and less than or equal to 85% by volume with respect to a total volume of the mixed layer, wherein the ion migration region has a structure in which two or more cells including an ion-conducting material border 3 dimensionally, and a maximum stress in a vertical direction of a machine direction (MD) of the polymer electrolyte membrane is 200 kgf/cm.sup.2 or greater, wherein the support includes polyolefin, polyamide, polyester, polyacetal (or polyoxymethylene), polysulfide, polyvinyl alcohol, copolymers thereof and combinations thereof, wherein the cells are laminated in two or more layers in any one direction (x-axis direction), a direction vertical thereto (y-axis direction), and a thickness direction of the polymer electrolyte membrane (z-axis direction) from any surface horizontal to an upper surface of the polymer electrolyte membrane, wherein an average of maximum diameters of the cells is greater than or equal to 0.25 m and less than or equal to 0.4 m, and a standard deviation of maximum diameters of the cells is greater than or equal to 0.05 m and less than or equal to 0.2 m, and wherein the membrane includes cells having uniform sizes.
4. The polymer electrolyte membrane of claim 1, which has a maximum elongation in the machine direction (MD) of 20% or greater.
5. The polymer electrolyte membrane of claim 1, which has a maximum elongation in the vertical direction of the machine direction (MD) of 10% or greater.
6. The polymer electrolyte membrane of claim 1, wherein the hydrocarbon-based material is a polymer having one or more cation exchangers on a side chain, a ratio of the number of carbon atoms and the number of fluorine atoms included in the polymer is greater than or equal to 1:0 and less than 1:1, and the cation exchanger includes one or more types selected from the group consisting of a sulfonic acid group, a carboxylic acid group, a phosphoric acid group, a phosphonic acid group and derivatives thereof.
7. The polymer electrolyte membrane of claim 1, wherein the ion-conducting material includes one, two or more types selected from the group consisting of a sulfonated benzimidazole polymer, a sulfonated polyimide-based polymer, a sulfonated polyetherimide-based polymer, a sulfonated polyphenylenesulfide-based polymer, a sulfonated polysulfone-based polymer, a sulfonated polyethersulfone-based polymer, a sulfonated polyetherketone-based polymer, a sulfonated polyether-etherketone-based polymer, a sulfonated polyphenylquinoxaline-based polymer, and a polymer in which a sulfonated partial fluorine-based is introduced.
8. The polymer electrolyte membrane of claim 1, wherein the ion migration region includes the ion-conducting material in greater than or equal to 60% by volume and less than or equal to 100% by volume.
9. The polymer electrolyte membrane of claim 1, wherein a thickness of the mixed layer is greater than or equal to 1 m and less than or equal to 30 m.
10. The polymer electrolyte membrane of claim 1, wherein the support has a sponge structure in which two or more of the cells are distributed.
11. The polymer electrolyte membrane of claim 1 comprising sections of two or more of the cells in both a vertical section and a horizontal section of the polymer electrolyte membrane.
12. The polymer electrolyte membrane of claim 1, wherein the support is formed with two or more nodes, and each node includes three or more branches.
13. The polymer electrolyte membrane of claim 1, wherein the mixed layer includes greater than or equal to 10 and less than or equal to 400 cells in any region of 1 m.sup.3.
14. The polymer electrolyte membrane of claim 1, which is formed only with the mixed layer.
15. The polymer electrolyte membrane of claim 1 further comprising a pure layer including only the ion-conducting material provided on an upper surface, a lower surface, or an upper surface and a lower surface of the mixed layer.
16. The polymer electrolyte membrane of claim 15, wherein thicknesses of each pure layer provided on any one surface of the mixed layer is independently greater than 0 m and less than or equal to 6 m.
17. The polymer electrolyte membrane of claim 1, which has a total thickness of greater than or equal to 3 m and less than or equal to 36 m.
18. The polymer electrolyte membrane of claim 1, which has air permeability of 1 hour/100 ml or greater.
19. A membrane electrode assembly comprising the polymer electrolyte membrane of claim 1.
20. A fuel cell comprising the membrane electrode assembly of claim 19.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(7) Hereinafter, the present specification will be described in more detail.
(8) In the present specification, a description of one member being placed on another member includes not only a case of the one member adjoining the another member but a case of still another member being present between the two members.
(9) In the present specification, a description of a certain part including certain constituents means capable of further including other constituents, and does not exclude other constituents unless particularly stated on the contrary.
(10) One embodiment of the present specification provides a polymer electrolyte membrane including a mixed layer that includes an ion migration region and a support having a 3-dimensional network structure, wherein the ion migration region has a structure in which two or more cells including a hydrocarbon-based ion-conducting material border 3 dimensionally, and an RH cycle limit is at least 20,000 cycles.
(11) According to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 40,000 cycles.
(12) In addition, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 50,000 cycles.
(13) Furthermore, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 60,000 cycles.
(14) In addition, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 70,000 cycles.
(15) Furthermore, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 75,000 cycles.
(16) In addition, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 80,000 cycles.
(17) Furthermore, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 100,000 cycles.
(18) In addition, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 120,000 cycles.
(19) Furthermore, according to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of at least 150,000 cycles.
(20) According to one embodiment of the present specification, the polymer electrolyte membrane hardly experiences performance decline in the above-mentioned RH cycle range.
(21) According to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of 300,000 cycles or less.
(22) According to one embodiment of the present specification, the polymer electrolyte membrane may have an RH cycle limit of 500,000 cycles or less.
(23) The polymer electrolyte membrane according to one embodiment of the present specification has an advantage of having excellent durability. Specifically, excellent durability of the polymer electrolyte membrane may be identified through an RH cycle. More specifically, the polymer electrolyte membrane according to one embodiment of the present specification has an advantage in that durability decline caused by volume changes that occur while conducting an RH cycle similar to a fuel cell driving condition is significantly small.
(24) The RH cycle of the present specification means measuring durability in a fuel cell state after preparing the polymer electrolyte membrane as a membrane electrode assembly (MEA). Specifically, the RH cycle in the present specification means measuring durability under a condition of 80 C. while injecting nitrogen to an anode at a flow rate of 0.95 slm (standard liter per minute), injecting nitrogen to a cathode at a flow rate of 1.0 slm, and switching between humidification of RH (relative humidity) 150% and non-humidification of RH 0% at an interval of two minutes.
(25) Moreover, the RH cycle of the present specification being higher means a polymer electrolyte membrane having higher durability. In addition, the RH cycle limit means the number of cycles up to the cycle at which a polymer electrolyte membrane is damaged enough to be unusable as an MEA from conducting the RH cycle.
(26) In order to measure the RH cycle limit in the present specification, linear sweep volta-mmetry (LSV) is used. Specifically, the LSV means measuring hydrogen crossover at 0.1 to 0.4 V (2 mV/s) while injecting hydrogen to an anode at a flow rate of 0.2 slm, and injecting nitrogen to a cathode at a flow rate of 0.2 slm. In other words, when the hydrogen crossover value increases during the RH cycle, a polymer electrolyte membrane may be considered to be damaged, and depending on the degree of the hydrogen crossover value increase, the degree of the polymer electrolyte membrane damage may be determined. When a hydrogen crossover value rapidly increases during the RH cycle, the polymer electrolyte membrane is damaged enough not to perform its role, and the number of the RH cycles at the time may be the RH cycle limit.
(27) For example, the RH cycle limit means the number of RH cycles during which the hydrogen crossover value of a polymer electrolyte membrane capable of normal operation increases by 5 or more times.
(28) In other words, the RH cycle having a higher limit means a polymer electrolyte membrane having higher durability, and when the RH cycle limit is at least 20,000 cycles, a polymer electrolyte membrane is generally considered to have excellent durability. The polymer electrolyte membrane according to one embodiment of the present specification is capable of maintaining steady performance with almost no performance decline even when the RH cycle limit is 20,000 cycles or greater.
(29) According to one embodiment of the present specification, a maximum stress in the machine direction (MD) of the polymer electrolyte membrane may be 200 kgf/cm.sup.2 or greater.
(30) According to one embodiment of the present specification, a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 200 kgf/cm.sup.2 or greater.
(31) One embodiment of the present specification provides a polymer electrolyte membrane including a mixed layer that includes an ion migration region and a support having a 3-dimensional network structure, wherein the ion migration region has a structure in which two or more cells including a hydrocarbon-based ion-conducting material border 3 dimensionally, and a maximum stress in the machine direction (MD) of the polymer electrolyte membrane is 200 kgf/cm.sup.2 or greater.
(32) One embodiment of the present specification provides a polymer electrolyte membrane including a mixed layer that includes an ion migration region and a support having a 3-dimensional network structure, wherein the ion migration region has a structure in which two or more cells including a hydrocarbon-based ion-conducting material border 3 dimensionally, and a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane is 200 kgf/cm.sup.2 or greater.
(33) According to one embodiment of the present specification, the polymer electrolyte membrane may have directivity. Specifically, according to one embodiment of the present specification, the support may be prepared through monoaxial orientation or biaxial orientation of a polymer, and the support directivity caused by the orientation may determine the directivity of the polymer electrolyte membrane. Accordingly, the polymer electrolyte membrane according to one embodiment of the present specification may have directivity of the machine direction (MD), and directivity of the vertical direction of the machine direction (MD), and the polymer electrolyte membrane may exhibit differences in physical properties such as stress and elongation depending on the directivity.
(34) The machine direction (MD) may have a meaning generally used in the art. Specifically, the machine direction may mean a winding direction when prepared by being wound in a roll form.
(35) According to one embodiment of the present specification, a maximum stress in the machine direction (MD) of the polymer electrolyte membrane may be 300 kgf/cm.sup.2 or greater.
(36) According to one embodiment of the present specification, a maximum stress in the machine direction (MD) of the polymer electrolyte membrane may be 500 kgf/cm.sup.2 or greater.
(37) According to one embodiment of the present specification, a maximum stress in the machine direction (MD) of the polymer electrolyte membrane may be 800 kgf/cm.sup.2 or greater.
(38) According to one embodiment of the present specification, a maximum stress in the machine direction (MD) of the polymer electrolyte membrane may be 900 kgf/cm.sup.2 or greater.
(39) According to one embodiment of the present specification, a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 300 kgf/cm.sup.2 or greater.
(40) According to one embodiment of the present specification, a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 400 kgf/cm.sup.2 or greater.
(41) According to one embodiment of the present specification, a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 600 kgf/cm.sup.2 or greater.
(42) According to one embodiment of the present specification, a maximum stress in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 800 kgf/cm.sup.2 or greater.
(43) According to one embodiment of the present specification, a maximum elongation in the machine direction (MD) of the polymer electrolyte membrane may be 20% or greater.
(44) According to one embodiment of the present specification, a maximum elongation in the machine direction (MD) of the polymer electrolyte membrane may be 50% or greater.
(45) According to one embodiment of the present specification, a maximum elongation in the machine direction (MD) of the polymer electrolyte membrane may be 60% or greater.
(46) According to one embodiment of the present specification, a maximum elongation in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 10% or greater.
(47) According to one embodiment of the present specification, a maximum elongation in the vertical direction of the machine direction (MD) of the polymer electrolyte membrane may be 30% or greater.
(48) The maximum stress in the present specification means a magnitude of force per unit area in the instant of a polymer electrolyte membrane cut with a distance between grips of 100 mm and a tension speed of 10 mm/min under a condition of a temperature of 20 C. and humidity of 22%.
(49) In addition, the maximum elongation in the present specification means a percentage of polymer electrolyte membrane stretching in the instant of the polymer electrolyte membrane cut with a distance between grips of 100 mm and a tension speed of 10 mm/min under a condition of a temperature of 20 C. and humidity of 22%. Specifically, the maximum stress and the maximum elongation in the present specification means measuring a polymer electrolyte membrane cut in the form of a dog bone according to the American Society for Testing and Materials (ASTM) standard at a speed of 10 mm/min using a united test machine (UTM). The UTM is an apparatus simultaneously measuring tensile strength and elongation, and is an apparatus generally used in the art.
(50) The polymer electrolyte according to one embodiment of the present specification has a high maximum stress, therefore, has an advantage of performing its function for a long period of time without performance variations in a fuel cell in which an electrolyte membrane is repeatedly expanded and contracted due to the repetition of high temperature humidification and drying.
(51) According to one embodiment of the present specification, the hydrocarbon-based material is a polymer having one or more cation exchangers on the side chain, the ratio of the number of carbon atoms and the number of fluorine atoms included in the polymer is greater than or equal to 1:0 and less than 1:1, and the cation exchanger may include one or more types selected from the group consisting of a sulfonic acid group, a carboxylic acid group, a phosphoric acid group, a phosphonic acid group and derivatives thereof.
(52) According to one embodiment of the present specification, the hydrocarbon-based material may not include fluorine on the main chain or side chain.
(53) According to one embodiment of the present specification, the ratio of the number of carbon atoms and the number of fluorine atoms included in the polymer may be greater than or equal to 1:0 and less than or equal to 2:1 in the hydrocarbon-based material.
(54) According to one embodiment of the present specification, the ion-conducting material may include a cation-conducting material and/or an anion-conducting material.
(55) According to one embodiment of the present specification, the ion-conducting material may include a proton conducting material.
(56) According to one embodiment of the present specification, the ion-conducting material may include one, two or more types selected from the group consisting of a sulfonated benzimidazole-based polymer, a sulfonated polyimide-based polymer, a sulfonated polyetherimide-based polymer, a sulfonated polyphenylenesulfide-based polymer, a sulfonated polysulfone-based polymer, a sulfonated polyethersulfone-based polymer, a sulfonated polyetherketone-based polymer, a sulfonated polyether-etherketone-based polymer, a sulfonated polyphenylquinoxaline-based polymer, and a polymer in which a sulfonated partial fluorine-based is introduced.
(57) According to one embodiment of the present specification, the polymer in which a sulfonated partial fluorine-based is introduced may be a polymer in which a sulfone group binds to at least one side chain, and the ratio of the number of carbon atoms and the number of fluorine atoms included in the polymer is greater than 1:0 and less than 1:1.
(58) According to one embodiment of the present specification, the ion-conducting material may have ion conductance of 1 mS/cm or greater at 60 C. or higher.
(59) According to one embodiment of the present specification, the ion-conducting material may have ion exchange capacity (IEC) of 1 meq/g or greater.
(60) According to one embodiment of the present specification, the support may include a hydrocarbon-based material. Specifically, according to one embodiment of the present specification, the support may be a hydrocarbon-based support.
(61) According to one embodiment of the present specification, the support may include a semi-crystalline polymer.
(62) The semi-crystalline polymer of the present specification may have a crystallinity range of 20% to 80%.
(63) According to one embodiment of the present specification, the semi-crystalline polymer may include polyolefin, polyamide, polyester, polyacetal (or polyoxymethylene), polysulfide, polyvinyl alcohol, copolymers thereof and combinations thereof, but is not limited thereto.
(64) According to one embodiment of the present specification, the support may include those derived from polyolefin-based materials.
(65) The polyolefin may include polyethylene (LDPE, LLDPE, HDPE, UHMWPE), polypropylene, polybutene, polymethylpentene, copolymers thereof and blends thereof.
(66) The polyamide may include polyamide 6, polyamide 6/6, nylon 10/10, polyphthalamide (PPA), copolymers thereof and blends thereof, but is not limited thereto.
(67) The polyester may include polyester terephthalate (PET), polybutylene terephthalate (PBT), poly-1-4-cyclohexylenedimethylene terephthalate (PCT), polyethylene naphthalate (PEN) and liquid crystal polymers (LCP), but is not limited thereto.
(68) The polysulfide includes polyphenyl sulfide, polyethylene sulfide, copolymers thereof and blends thereof, but is not limited thereto.
(69) The polyvinyl alcohol includes ethylene-vinyl alcohol, copolymers thereof and blends thereof, but is not limited thereto.
(70) The polymer electrolyte membrane according to one embodiment of the present specification may include cells having uniform sizes.
(71) Specifically, according to one embodiment of the present specification, an average of the maximum diameters of the cells may be greater than or equal to 0.25 m and less than or equal to 0.4 m. In addition, according to one embodiment of the present specification, a standard deviation of the maximum diameters of the cells may be greater than or equal to 0.05 m and less than or equal to 0.2 m.
(72)
(73) According to one embodiment of the present specification, the cells may be laminated in two or more layers in any one direction (x-axis direction), a direction vertical thereto (y-axis direction), and a thickness direction of the polymer electrolyte membrane (z-axis direction) on any surface horizontal to the upper surface of the polymer electrolyte membrane.
(74) According to one embodiment of the present specification, the support may have a sponge structure in which two or more of the cells are distributed.
(75) According to one embodiment of the present specification, sections of two or more of the cells may be included in both the vertical section and the horizontal section of the polymer electrolyte membrane.
(76) The diameter of the cell section of the present specification may mean the length of the longest line crossing the cell section.
(77) According to one embodiment of the present specification, the cell section on the horizontal surface of the polymer electrolyte membrane may have a height to width ratio of 1:1 to 5:1.
(78) According to one embodiment of the present specification, the cell section on the vertical surface of the polymer electrolyte membrane may have a height to width ratio of 1:1 to 10:1.
(79) According to one embodiment of the present specification, the diameter size of the cell section on the horizontal surface of the polymer electrolyte membrane may be greater than or equal to 40 nm and less than or equal to 1,000 nm.
(80) According to one embodiment of the present specification, the diameter size of the cell section on the vertical surface of the polymer electrolyte membrane may be greater than or equal to 40 nm and less than or equal to 1,000 nm.
(81) According to one embodiment of the present specification, the ratio of the cell numbers per 100 m.sup.2 of the horizontal surface and the vertical surface of the polymer electrolyte membrane may be from 1:1 to 1:5.
(82) According to one embodiment of the present specification, a variation in the cell numbers on the vertical section and the horizontal section per 100 m.sup.2 of the polymer electrolyte membrane may be greater than or equal to 0 and less than or equal to 500.
(83) According to one embodiment of the present specification, an average size of the diameters of the cell sections may be greater than or equal to 40 nm and less than or equal to 500 nm.
(84) According to one embodiment of the present specification, a standard deviation of the diameters of the cell sections may be from 50 nm to 200 nm.
(85) According to one embodiment of the present specification, the cell diameters may be greater than or equal to 40 nm and less than or equal to 1000 nm.
(86) According to one embodiment of the present specification, the support is formed with two or more nodes, and each node may include three or more branches.
(87) According to one embodiment of the present specification, a distance between any one node and another adjacent node of the support may be from 10 nm to 500 nm.
(88) According to one embodiment of the present specification, a length from the center of the cell to any point of the support may be from 20 nm to 500 nm.
(89) According to one embodiment of the present specification, the mixed layer may include greater than or equal to 10 and less than or equal to 400 cells in any region of 1 m.sup.3.
(90) According to one embodiment of the present specification, the mixed layer may include greater than or equal to 10 and less than or equal to 150 cells in any region of 1 m.sup.3.
(91) According to one embodiment of the present specification, the mixed layer may include greater than or equal to 40 and less than or equal to 150 cells in any region of 1 m.sup.3.
(92) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 40% by volume and less than or equal to 85% by volume with respect to the total volume of the mixed layer.
(93) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 40% by volume and less than or equal to 80% by volume with respect to the total volume of the mixed layer.
(94) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 40% by volume and less than or equal to 70% by volume with respect to the total volume of the mixed layer.
(95) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 40% by volume and less than or equal to 60% by volume with respect to the total volume of the mixed layer.
(96) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 40% by volume and less than or equal to 55% by volume with respect to the total volume of the mixed layer.
(97) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 45% by volume and less than or equal to 65% by volume with respect to the total volume of the mixed layer.
(98) According to one embodiment of the present specification, the ion migration region may be greater than or equal to 45% by volume and less than or equal to 60% by volume with respect to the total volume of the mixed layer.
(99) The ion migration region in the present specification may mean a region excluding a skeleton formed by the support. In addition, the ion migration region may be a pore region when only the support is present. Moreover, ions may migrate through the ion-conducting material by the ion-conducting material being included in the ion migration region.
(100) According to one embodiment of the present specification, the polymer electrolyte membrane may exhibit excellent ion conductance when the ion-conducting material is included within the above-mentioned range in the ion migration region.
(101) When the ion migration region of the polymer electrolyte membrane according to the present specification is greater than or equal to 40% by volume and less than or equal to 85% by volume, sufficient ion conductance may be secured while securing durability of the polymer electrolyte membrane. In other words, when the ion migration region is less than 40% by volume, durability of the polymer electrolyte membrane is enhanced, however, there is a disadvantage in that sufficient ion conductance is difficult to be secured. Moreover, when the ion migration region is greater than 85% by volume, ion conductance of the polymer electrolyte membrane increases, however, there is a disadvantage in that durability is difficult to be secured.
(102)
(103) The vertical surface may mean a surface in the thickness direction of the polymer electrolyte membrane. In addition, the horizontal surface is a surface vertical to the thickness direction of the polymer electrolyte membrane, and may mean a surface occupying a relatively large region.
(104) In
(105) The cell of the present specification may have a spherical shape, a shape of pressed sphere, or a polyhedron shape, and when the cell has a spherical shape, the cell section may have a closed figure having a height to width ratio of 1:1 to 5:1.
(106) When nodes and fibrous branches connecting the nodes of the support are connected in the cell of the present specification, it may mean a virtual 3-dimensional closed space surrounded by virtual planes formed. The node may mean a site in which two or more fibrous branches meet. Specifically, the node may mean a site in which two or more fibrous branches meet to form a branching point including 3 or more branches.
(107)
(108) In addition, the cell of the present specification is a unit space of an ion migration region including an ion-conducting material surrounded by fibrous branches of the support, and the horizontal and the vertical direction sections of the virtual 3-dimensional closed space in the case of being surrounded by the support fibers may have a figure of a circle, an ellipse or a simple closed curve.
(109) In addition, the cell of the present specification means having a volume of larger than certain sizes, and cells having a diameter of less than 40 nm may not be considered as the cell.
(110) The diameter of the cell in the present specification may mean a length of the longest line crossing the cell.
(111) One embodiment of the present specification provides a polymer electrolyte membrane in which the thickness ratio of the mixed layer is greater than or equal to 30% and less than or equal to 100% with respect to the total thickness of the polymer electrolyte membrane.
(112) According to one embodiment of the present specification, the thickness ratio of the mixed layer with respect to the total thickness of the polymer electrolyte membrane may be greater than or equal to 50% and less than or equal to 100%.
(113) According to one embodiment of the present specification, the thickness ratio of the mixed layer with respect to the total thickness of the polymer electrolyte membrane may be greater than or equal to 65% and less than or equal to 95%.
(114) When the thickness ratio of the mixed layer with respect to the total thickness of the polymer electrolyte membrane is outside the above-mentioned range and less than 50% with respect to the total thickness of the polymer electrolyte membrane, a durability enhancing effect of the mixed layer by the support may be insignificant. Specifically, when the thickness of the mixed layer is less than 50% with respect to the total thickness of the polymer electrolyte membrane, the polymer electrolyte membrane may have reduced durability due to an influence of the behavior of a pure layer formed with an ion-conducting material.
(115) According to one embodiment of the present specification, the polymer electrolyte membrane may be formed only with the mixed layer. Specifically, according to one embodiment of the present specification, when the polymer electrolyte membrane is formed only with the mixed layer, the thickness ratio of the mixed layer with respect to the total thickness of the polymer electrolyte membrane may be 100%.
(116) According to one embodiment of the present specification, the thickness ratio of the mixed layer with respect to the total thickness of the polymer electrolyte membrane may be greater than or equal to 50% and less than 100%. Specifically, according to one embodiment of the present specification, the polymer electrolyte membrane may further include a pure layer formed with the ion-conducting material on the upper surface and/or the lower surface of the mixed layer.
(117) When the polymer electrolyte membrane is formed only with the mixed layer, joint strength between the polymer electrolyte membrane and an electrode may be reduced, and this may lead to a problem of the electrode and the polymer electrolyte membrane being separated while operating a fuel cell.
(118) One embodiment of the present specification provides a polymer electrolyte membrane in which the mixed layer has a thickness of greater than or equal to 1 m and less than or equal to 30 m.
(119) According to one embodiment of the present specification, the thickness of the mixed layer may be greater than or equal to 1 m and less than or equal to 25 m.
(120) According to one embodiment of the present specification, the thickness of the mixed layer may be greater than or equal to 1 m and less than or equal to 15 m.
(121) According to one embodiment of the present specification, the thickness of the mixed layer may be greater than or equal to 5 m and less than or equal to 15 m.
(122) When the thickness of the mixed layer according to the present specification is greater than or equal to 1 m and less than or equal to 30 m, high ion conductance and durability may be obtained. In addition, when the thickness of the mixed layer is within the above-mentioned range, durability decline due to a thickness decrease may hardly occur. In other words, when the thickness of the mixed layer is less than 1 m, there is a disadvantage in that durability is not maintained, and when the thickness is greater than 30 m, there is a disadvantage in that ion conductance may decrease.
(123) According to one embodiment of the present specification, the polymer electrolyte membrane may be formed only with the mixed layer.
(124) According to one embodiment of the present specification, the polymer electrolyte membrane may further include a pure layer including only the ion-conducting material provided on the upper surface, the lower surface, or the upper surface and the lower surface of the mixed layer.
(125) According to one embodiment of the present specification, the mixed layer may be formed by immersing the support into the ion-conducting material.
(126) Specifically, according to one embodiment of the present specification, when the ion-conducting material is included up to the thickness range of the support, a polymer electrolyte membrane without a pure layer may be formed. In addition, according to one embodiment of the present specification, when the ion-conducting material is included exceeding the thickness range of the support, a polymer electrolyte membrane provided with a pure layer on the upper surface and/or the lower surface of the mixed layer may be prepared.
(127) According to one embodiment of the present specification, an ion-conducting material included in the mixed layer and an ion-conducting material included in the pure layer may be different from each other. Specifically, according to one embodiment of the present specification, after forming the mixed layer, a pure layer may be formed by coating an ion-conducting material that is different from an ion-conducting material included in the mixed layer on the upper surface and/or the lower surface of the mixed layer.
(128) According to one embodiment of the present specification, the pure layers provided on any one surface of the mixed layer may be each independently laminated in two or more layers, and each layer may include a different ion-conducting material.
(129) According to one embodiment of the present specification, the thicknesses of the pure layers provided on any one surface of the mixed layer may be each independently greater than 0 m and less than or equal to 6 m.
(130) According to one embodiment of the present specification, the pure layers may be each provided on the upper surface and the lower surface of the mixed layer.
(131) According to one embodiment of the present specification, the thickness difference between the pure layers each provided on the upper surface and the lower surface of the mixed layer may be 50% or less of the thickness of the mixed layer. Specifically, the thickness difference between the pure layers provided on the upper surface and the lower surface of the mixed layer may be 30% or less of the thickness of the mixed layer. According to one embodiment of the present specification, the thickness difference between the pure layers being 0% of the thickness of the mixed layer means that the thicknesses of the pure layers each provided on the upper surface and the lower surface of the mixed layer are the same.
(132) According to one embodiment of the present specification, when the thickness difference between the pure layer provided on the lower surface of the mixed layer and the pure layer provided on the upper surface of the mixed layer is 50% or less of the thickness of the mixed layer, the degree of contraction and expansion of the upper surface and the lower surface of the polymer electrolyte membrane becomes similar even when humidification and drying of the polymer electrolyte membrane are repeated, and the occurrence of cracks may be prevented.
(133) According to one embodiment of the present specification, the thickness ratio of the mixed layer and the whole pure layer may be from 1:0 to 1:4. Specifically, the thickness ratio of the mixed layer and the whole pure layer may be from 1:0 to 1:1.5. More specifically, the thickness ratio of the mixed layer and the whole pure layer may be from 1:0 to 1:1.
(134) The polymer electrolyte membrane according to one embodiment of the present specification is capable of exhibiting high durability under a condition that humidified and dried states are repeated as the thickness ratio of the mixed layer increases with respect to the pure layer.
(135) According to one embodiment of the present specification, the total thickness of the polymer electrolyte membrane may be greater than or equal to 3 m and less than or equal to 36 m.
(136) According to one embodiment of the present specification, the ion migration region may include the ion-conducting material in greater than or equal to 60% by volume and less than or equal to 100% by volume.
(137) According to one embodiment of the present specification, the ion migration region may include the ion-conducting material in greater than or equal to 70% by volume and less than or equal to 100% by volume.
(138) According to one embodiment of the present specification, the polymer electrolyte membrane may have air permeability of 1 hour/100 ml or greater.
(139) The polymer electrolyte membrane according to one embodiment of the present specification may exhibit excellent efficiency in a fuel cell by forming a dense structure. Specifically, the dense structure of the polymer electrolyte membrane may be shown through the air permeability value. When the polymer electrolyte membrane according to one embodiment of the present specification has air permeability in the above-mentioned range, excellent electrolyte membrane performance may be exhibited in a fuel cell.
(140) The present specification provides a membrane electrode assembly including the polymer electrolyte membrane. In addition, the present specification provides a fuel cell including the membrane electrode assembly.
(141) The fuel cell of the present specification includes fuel cells generally known in the art.
(142) One embodiment of the present specification provides a fuel cell including a stack that includes the membrane electrode assembly and a separator provided between the membrane electrode assemblies; a fuel supply unit supplying fuel to the stack; and an oxidizer supply unit supplying an oxidizer to the stack.
(143)
(144) The stack (200) includes one, two or more of the membrane electrode assemblies, and when two or more of the membrane electrode assemblies are included, a separator provided therebetween is included.
(145) The separator prevents the membrane electrode assemblies from being electrically connected, and performs a role of transferring a fuel and an oxidizer supplied from the outside.
(146) The oxidizer supply unit (70) performs a role of supplying an oxidizer to the stack (60). As the oxidizer, oxygen is typically used, and oxygen or air may be used by being injected with a pump (70).
(147) The fuel supply unit (80) performs a role of supplying a fuel to the stack (60), and may be formed with a fuel tank (81) storing a fuel, and a pump (82) supplying the fuel stored in the fuel tank (81) to the stack (60). As the fuel, a hydrogen or hydrocarbon fuel in a gas or liquid state may be used, and examples of the hydrocarbon fuel may include methanol, ethanol, propanol, butanol or natural gas.
MODE FOR DISCLOSURE
(148) Hereinafter, the present specification will be described in detail with reference to examples. However, examples according to the present specification may be modified to various other forms, and the scope of the present specification is not interpreted to be limited to the examples described below. Examples in the present specification are provided in order to more completely describe the present specification for those having average knowledge in the art.
Example 1
(149) As an ion-conducting material, an immersion solution was made by dissolving a sulfonated polyether-etherketone-based ion-conducting polymer in dimethyl sulfoxide (DMSO) to have a concentration of 7 wt %, and then a polypropylene-based support having porosity of approximately 70% and a thickness of approximately 15 m fixed on a frame of 10 cm10 cm was immersed into the immersion solution. After that, the result was dried for 24 hours in an oven at 80 C., and a polymer electrolyte membrane was prepared. The prepared membrane was acid treated for 24 hours in 10% sulfuric acid at 80 C., washed 4 or more times with distilled water, dried, and then used. The final thickness of the polymer electrolyte membrane prepared according to Example 1 was from 9.7 to 12.2 m, the thickness of a mixed layer was from 7 m to 8 m, the thickness of a pure layer provided on the upper part of the mixed layer was from 0.7 m to 1.2 m, and the thickness of a pure layer provided on the lower part of the mixed layer was from 2 m to 3 m.
Comparative Example 1
(150) A polymer electrolyte membrane was prepared by casting only the immersion solution used in Example 1 on a glass plate to a thickness of 400 m, and then drying the result for 24 hours in an oven at 80 C. The prepared polymer electrolyte membrane was treated in the same manner as in Example 1, and then used. Specifically, the polymer electrolyte membrane prepared according to Comparative Example 1 was formed only with a pure layer, and the thickness was 20 m.
Comparative Example 2
(151) A fluorine-based support having porosity of approximately 90% and a thickness of approximately 7 m fixed on a frame of 10 cm10 cm was prepared using polytetrafluoroethylene (PTFE). Moreover, the fluorine-based support was immersed into the immersion solution used in Example 1. The preparation process thereafter was progressed in the same manner as in Example 1. The final thickness of the polymer electrolyte membrane prepared according to Comparative Example 2 was from 23 m to 31 m, the thickness of a mixed layer was from 5 m to 10 m, the thickness of a pure layer provided on the upper part of the mixed layer was from 16 m to 18 m, and the thickness of a pure layer provided on the lower part of the mixed layer was from 2 m to 3 m.
(152) Durability of the polymer electrolyte membranes prepared according to Example 1, Comparative Example 1 and Comparative Example 2 was measured through an RH cycle, and the results are shown in
(153) As shown in
[Test Example 1] Evaluation on Tensile Strength of Polymer Electrolyte Membrane
(154) Tensile strength of the polymer electrolyte membranes prepared according to Example 1, and Comparative Examples 1 and 2 was measured. Specifically, the prepared polymer electrolyte membranes were cut into 3 pieces each to have an ASTM D-412A dog bone form in the machine direction and the vertical direction of the machine direction, and tensile strength tests were carried out using a Shimadzu AGS-X 100N apparatus. The tests were carried out with a distance between grips of 100 mm and a tension speed of 10 mm/min under a condition of a temperature of 20 C. and a humidity of 22%. The results according to Test Example 1 are shown in the following Table 1.
(155) TABLE-US-00001 TABLE 1 Vertical Direction of Machine Direction Machine Direction Maximum Maximum Maximum Maximum Stress Elongation Stress Elongation (kgf/cm.sup.2) (%) (kgf/cm.sup.2) (%) Example 1 919.3 72.7 832.7 49.4 1046.5 71.8 771.8 35.7 986.1 69 905.6 55 Comparative 672 12.9 702.8 12.5 Example 1 673.8 12.3 685.7 6.7 733.1 38.5 692 11.5 Comparative 249.0 2.8 469.6 10.3 Example 2 308.0 8.6 482.1 8.8 432.4 4.9 373.7 4.1
(156) As seen from Table 1, it can be seen that the polymer electrolyte membrane according to Example 1 had excellent maximum stress and maximum elongation compared to the polymer electrolyte membranes according to the comparative examples. This indicates that the polymer electrolyte membrane according to one embodiment of the present specification is capable of exhibiting excellent durability when used in a fuel cell in which contraction and expansion are repeated.
[Test Example 2] Performance Evaluation of Membrane Electrode Assembly Including Polymer Electrolyte Membrane
(157) In order to measure the performances of the polymer electrolyte membrane prepared in Example 1 in a fuel cell, the polymer electrolyte membrane was cut into a square of 8 cm8 cm, and a carbon-deposited platinum catalyst having Pt of 0.4 mg/cm.sup.2 was transferred in a size of 5 cm5 cm to the upper surface and the lower surface of the polymer electrolyte membrane, and a membrane-electrode assembly was prepared. The performance evaluation was carried out under a condition of 70 C., relative humidity (RH) of 50%, H.sub.2/Air and atmospheric pressure.
(158)
(159) As shown in