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1.
以叔丁基对苯二酚(TBHQ)为双酚单体,1,4-二(4′-氟苯甲酰基)苯,3,3′-二磺酸钠基-4,4′-二氧二苯砜(SDCDPS)为原料,采用亲核缩聚反应,通过调整磺化单体和非磺化单体的比例与叔丁基对苯二酚共聚,合成了一系列具有不同磺化度的聚芳醚酮砜.通过红外光谱(FTIR),TGA,DSC等分析方法对其结构及性能进行了表征.并用TEM对其内部形态进行了研究,建立了结构与性能之间的关系.通过对膜进行综合性能评价发现,磺化度为0.8的磺化聚芳醚酮砜膜的质子传导率在80℃时达到了0.061 S/cm接近了Nafion 117,而且其甲醇渗透系数为3.4×10-7cm2/s远低于Nafion 117,在质子交换膜燃料电池(PEMFC)和直接甲醇燃料(DMFC)电池中表现出了好的应用前景.  相似文献   

2.
通过四元缩聚的方法合成了带有氨基的磺化度可控的磺化聚芳醚酮砜共聚物(Am-SPAEKS). 采用红外光谱和核磁共振谱表征了Am-SPAEKS共聚物的结构. 该共聚物膜具有较好的热性能、尺寸稳定性、较高的质子传导率和阻醇能力. 在80℃时Am-SPAEKS-1膜的质子传导率达到0.0894 S/cm, 而其甲醇渗透系数在25℃时为0.24×10-6 cm2/s, 低于相同温度下SPAEKS膜(0.87×10-6 cm2/s)和Nafion膜(2×10-6 cm2/s). 结果表明, Am-SPAEKS膜能够满足质子交换膜燃料电池(PEMFC)的使用要求.  相似文献   

3.
以自制的高磺化度磺化聚芳醚酮砜(SPAEKS)和含有氨基的聚芳醚酮(Am-PAEK)为原料,通过共溶剂涂膜法制备了不同重量比例的Am-PAEK/SPAEKS复合膜.通过高温(160℃)处理使氨基和磺酸基团在复合膜内形成交联,制得交联型复合膜.复合膜的热性能、尺寸稳定性、阻醇性能有所提高,而且交联型复合膜中的Am-PAEK/SPAEKS-C-3质子传导率在120℃时达到了0.0892 S/cm,高于在相同测试条件下SPAEKS膜的0.0654 S/cm和Nafion膜的0.062 S/cm,而其甲醇渗透系数在25℃时达到0.14×10-6cm2/s,低于SPAEKS膜的0.85×10-6cm2/s和Nafion膜的2×10-6cm2/s.实验结果表明,Am-PAEK/SPAEKS交联型复合膜有望在中高温质子交换膜燃料电池中得到应用.  相似文献   

4.
以4-(3,5-二甲基-4-羟基苯基)2,3-二氮杂萘-1-酮,3,3′-二磺酸钠-4,4′-二氟苯甲酮和4,4′-二氯二苯砜为原料,利用亲核缩聚反应,通过改变磺化单体的含量,制备出一系列不同磺化度的杂萘联苯聚醚砜酮(SPPESK-DM).采用FTIR、1H-NMR表征了聚合物的结构,热失重分析仪研究了聚合物的耐热稳定性,以N-甲基-2-吡咯烷酮为溶剂采用溶液浇铸法成膜研究该系列聚合物膜的性能.结果表明,SPPESK-DM磺酸基的热分解温度在260℃以上,主链分解温度在410℃以上;膜的吸水率、溶胀率、离子交换容量和质子传导率均随着磺化度的增大而增大,磺化度为1.0的SPPESK-DM50的质子传导率达到1.08×10-2S/cm(85℃),且甲醇渗透系数为2.06×10-7cm2/s,低于Nafion117膜的甲醇渗透系数(2×10-6cm2/s).此系列膜的耐氧化性比较优异,可望用于质子交换膜燃料电池中.  相似文献   

5.
利用亲核缩聚方法合成出带有氨基的磺化度可控的磺化聚芳醚酮砜共聚物(Am-SPAEKS),并在180℃下制备了C-Am-SPAEKS交联膜.红外和氢核磁图表明氨基已被引入到SPAEKS共聚物中,而且AmSPAEKS聚合物中的磺酸基团与氨基反应生成磺酰胺键而形成共价交联.通过对C-Am-SPAEKS膜性能测试发现,氨基与磺酸基团之间发生的共价交联反应使交联膜的致密性增加,从而使膜的甲醇渗透系数显著降低,膜的溶胀性、热稳定性和膜的保水能力都得到了提高.在120℃时C-Am-SPAEKS膜的质子传导率达到了0.0883 S/cm,而其甲醇渗透系数在25℃时为0.5×10-7cm2/s,明显低于SPAEKS膜的8.9×10-7cm2/s和Nafion膜的2×10-6cm2/s.实验结果表明,C-Am-SPAEKS膜能够满足质子交换膜燃料电池(PEMFC)的使用要求,有望在中高温和直接甲醇燃料电池中得以应用.  相似文献   

6.
为了降低质子交换膜(PEM)的甲醇渗透系数和改善PEM在中高温(80~120 ℃)时的质子传导率, 以自制的磺化度(SD)为100%的磺化聚芳醚酮砜(SPAEKS)与聚芳醚砜噁二唑(PAESO)为原料, 采用溶液共混法制备了SPAEKS/PAESO复合膜, 并用傅里叶变换红外光谱(FTIR)和热重分析(TGA)对其进行了表征. 结果表明, 该复合膜具有较好的化学稳定性和热稳定性. 扫描电子显微镜(SEM)照片显示, 复合膜具有较好的致密结构, 其甲醇渗透系数为3.9×10-7~6.6×10-7 cm2/s, 低于SPAEKS的8.7×10-7 cm2/s. 在100 ℃时复合膜的质子传导率达到0.074 S/cm, 高于SPAEKS膜的0.066 S/cm.  相似文献   

7.
侧链型磺化聚芳醚酮质子交换膜材料的制备   总被引:1,自引:0,他引:1  
本文通过对聚合物的结构设计, 采用均聚的途径将柔顺的大侧基(甲氧基苯基)引入聚芳醚酮侧链, 然后通过室温后磺化的方法成功制备出侧链型磺化聚芳醚酮材料. 此类材料表现出较好的热稳定性; 力学性能优异; 聚合物的质子传导率比报道过的类似材料有较大程度的提高; 于80 ℃时的质子传导率在0.190 S/cm以上, 超过了Nafion 117 薄膜的传导率(0.175 S/cm). 因此这类材料有望在质子交换膜领域得到应用.  相似文献   

8.
以4,4′-二氟二苯砜、4,4′-联苯二酚、3,3′-二磺化-4,4′-二氟二苯砜二钠盐和三羟基苯为原料, 经高温溶液缩聚反应, 制备了一系列不同磺化度的新型交联磺化聚芳醚砜(CSPAES). 利用1H NMR和FTIR对聚合物结构进行表征. 采用溶液浇铸法制备了聚合物膜. 对膜的离子交换容量、吸水率、尺寸变化、机械性能和质子导电率进行了分析. 结果表明, 通过交联处理的磺化聚芳醚砜的水溶胀性明显降低, 当IEC为2.43时, CSPAES膜M(6/4-5)在水中的质子导电率达到260.5 mS/cm, 约为相同条件下Nafion112的2倍.  相似文献   

9.
以高磺化度的磺化聚芳醚酮砜(SPAEKS)和吡咯(Py)为原料,通过原位聚合的方法制备了含有不同吡咯含量的SPAEKS/PPy复合膜.红外谱图表明SPAEKS聚合物中的磺酸基团与聚吡咯(PPy)中的亚氨基基团之间形成了强烈的相互作用.扫描电镜照片显示PPy能够均匀地分散在SPAEKS聚合物基体中,没有发生团聚现象.通过对复合膜的性能测试发现PPy的引入提高了复合膜的热稳定性,降低了复合膜的吸水率,改善了其水溶胀性.同时膜中水的脱附系数下降,提高了膜的保水能力.SPAEKS/PPy-3复合膜的甲醇渗透系数达到了1.18×10-7cm2/s,明显低于纯SPAEKS膜的8.52×10-7cm2/s,而其质子传导率虽有所降低,但在25℃和80℃仍然分别达到了0.039S/cm和0.061S/cm,能够满足质子交换膜对质子传导率的要求.研究结果表明,聚吡咯与SPAEKS中磺酸基的摩尔比为0.99的复合膜有望在直接甲醇燃料电池中得到应用.  相似文献   

10.
采取"二锅二步"的聚合方法以双酚芴、4,4'-二氯二苯砜、双酚AF型二氮杂萘酮、二氟二苯酮磺酸钠为原料制备了含芴-聚芳醚砜憎水链段和双酚AF型二氮杂萘酮-磺化聚芳醚酮亲水链段的两亲嵌段聚芳醚砜酮离聚物,通过调整4种单体的比例以及预聚合、再缩合聚合工艺制备了一系列具有不同链段尺寸的芴-双酚AF型氮杂萘酮-两亲嵌段聚芳醚砜酮离聚物质子交换膜材料.通过黏度测试、傅里叶变换红外光谱(FTIR)、氢谱(1H-NMR)、热失重(TGA)等分析方法,对离聚物的结构和性能进行了表征,用蒸发溶剂法制备了质子交换膜,并考察膜的各种性能.实验结果表明,该系列离聚物的结构可控,热稳定性良好,5 wt%热失重温度均高于250℃;由其制备的质子交换膜具有良好的耐醇性和耐甲醇渗透性能、优异的抗氧化性和水解稳定性、以及适当的质子导电率和吸水率,室温下该系列膜的甲醇渗透率在0.23×10-6~0.28×10-6cm2/s,比Nafion 117具有更好的耐甲醇渗透性能;80℃下该系列膜的质子导电率与30℃时相比呈现倍增趋势,离聚物8e膜的质子导电率在80℃下达到了1.83×10-3S/cm.  相似文献   

11.
含磺酸钠基的杂萘联苯聚芳醚砜酮的合成与表征   总被引:3,自引:0,他引:3  
对4,4'-二氯二苯砜进行磺化改性制得磺化二氯二苯砜,不同比例的4,4'-二氯二苯砜和磺化二氯二苯砜与含二氮杂萘酮结构的类双酚单体(DHPZ)及4,4'-二氟二苯酮共聚合制得不同磺化度的磺化聚醚砜酮.对磺化单体及聚合物进行了IR和1HNMR表征,并研究了聚合物的溶解性和成膜性能.  相似文献   

12.
新型燃料电池质子交换膜──含叔丁基的磺化聚芳醚砜   总被引:5,自引:1,他引:4  
以3,3'-二磺酸钠基-4,4'-二氯二苯砜(SDCDPS)、叔丁基对苯二酚(TBHQ)、二氟二苯酮(DFBP)为原料,利用亲核缩聚反应,通过调整磺化单体(SDCDPS)和非磺化单体(DFBP)的比例与叔丁基对苯二酚(TBHQ)共聚,合成了不同磺化度的聚芳醚砜.聚合物成膜后的研究结果表明,该膜具有良好的机械性能和电化学性能,可能在质子交换膜燃料电池中得到应用.  相似文献   

13.
New sulfonated poly(arylene ether sulfone) copolymers with high molecular weights were successfully synthesized with controlled degrees of disulfonation of up to 70 mol % via the direct copolymerization of sulfonated aromatic dihalides, aromatic dihalides, and one of four structurally distinct bisphenols. The disodium salts of the 3,3′‐disulfonated‐4,4′‐dichlorodiphenyl sulfone and 3,3′‐disulfonated‐4,4′‐difluorodiphenyl sulfone comonomers were synthesized via the sulfonation of 4,4′‐dichlorodiphenyl sulfone or 4,4′‐difluorodiphenyl sulfone with 30% fuming sulfuric acid at 110 °C. Four bisphenols (4,4′‐bisphenol A, 4,4′‐bisphenol AF, 4,4′‐biphenol, and hydroquinone) were investigated for the syntheses of novel copolymers with controlled degrees of sulfonation. The composition and incorporation of the sulfonated repeat unit into the copolymers were confirmed by 1H NMR and Fourier transform infrared spectroscopy. Solubility tests on the sulfonated copolymers confirmed that no crosslinking and probably no branching occurred during the copolymerizations. Tough, ductile films were solvent‐cast that exhibited increased water absorption with increasing degrees of sulfonation. These copolymers are promising candidates for high temperature proton‐exchange membranes in fuel cells, which will be reported separately in part II of this series. © 2003 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 41: 2264–2276, 2003  相似文献   

14.
Multiblock copolymers 1a (Mn = 31,500–47,400) of sulfonated poly(aryl ether)s were synthesized by polycondensation of 4,4′‐difluorobenzophenone (DFBP), bis(4‐hydroxyphenyl)sulfone (BHPS), and an hydroxy‐terminated sulfonated oligomer, which was synthesized from DFBP and 2,2′,3,3′,5,5′‐hexaphenyl‐4,4′‐dihydroxybiphenyl a . The copolymerization of trimeric monomer b with DFBP and BHPS gave a series of copolymers 1b (Mn = 26,200–45,900). The copolymers were then sulfonated with chlorosulfonic acid to give ionomers 3a with hydrophilic multiblock segments and ionomers 3b with segments containing clusters of 18 sulfonic acid groups. The proton exchange membranes cast from ionomers 3a and 3b were characterized with regard to thermal stability, water uptake, proton conductivity, and morphology. Transmission electron microscopy images of 3a‐1 and 3b‐1 revealed a phase separation similar to that of Nafion that may explain their higher proton conductivities compared with randomly sulfonated copolymers. © 2009 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 47: 4762–4773, 2009  相似文献   

15.
高磺化度芳香聚醚醚酮的合成与表征   总被引:8,自引:0,他引:8  
用3,3'-二磺酸钠基-4,4-二氟二苯酮合成了具有高磺化度的荷电聚醚醚酮.用红外吸收光谱及DSC对其进行了表征.研究了共聚物的组成、热稳定性、溶解性、成膜性及磺化度对共聚物性能的影响.  相似文献   

16.
A novel sulfonated diamine monomer, 4,6-bis(4-arninophenoxy)-naphthalene-2-sulfonic acid(BAPNS), was synthesized. A series of sulfonated polyimide copolymers was prepared from BAPNS, 1,4,5,8-naphthalenetetracarboxylic dianhydride(NTDA) and nonsulfonated diamine 4,4'-diaminodiphenyl ether(ODA). Flexible, transparent, and mechanically strong membranes were obtained. The novel sulfonated polyimide(SPI) membranes show higher conductivity, for example, SPI-100 shows a conductivity of 0.0698 S/cm at 80℃(SPI-X: Xrefers to molar fraction of BAPNS). The membranes exhibit the permeability of methanol from 2.18×10^-7 cm2/s to 2.57×10^-7 cm2/s, which is much lower than that of Nafion(2.00×10 6 cm^2/s). The copolymers were thermally stable up to 330℃. The sulfonated polyimide copolymers also show reasonable mechanical strength; for example, the maximum tensile strength at break of the sulfonated polyimide copolymer with 100%(molar fraction) BAPNS is 1.35 GPa under high moisture condi- tions. The optimum concentration of BAPNS was found to be 100%(molar fraction) from the view point of proton conductivity, methanol permeability, and membrane stability.  相似文献   

17.
Sulfonated poly(phthalazinone ether ketone) (SPPEK) copolymers and sulfonated poly(phthalazinone ether sulfone) (SPPES) copolymers containing pendant sodium sulfonate groups were prepared by direct copolymerization. The reaction of disodium 3,3′‐disulfonate‐4,4′‐difluorobenzophenone (SDFB‐Na), 4,4′‐difluorobenzophenone (DFB), and 4‐(4‐hydroxyphenyl)‐1(2H)‐phthalazinone (DHPZ) at 170 °C in N‐methyl‐2‐pyrrolidione containing anhydrous potassium carbonate gave SPPEKs. SPPESs were similarly obtained with 3,3′‐disulfonate‐4,4′‐difluorophenyl sulfone, 4‐fluorophenyl sulfone (DFS), and DHPZ as monomers. The sulfonic acid groups, being on deactivated positions of the polymer backbone, were expected to be hydrolytically more stable than postsulfonated polymers. Fourier transform infrared and 1H NMR were used to characterize the structures and degrees of sulfonation of the sulfonated polymers. Membrane films of SPPEKs with SDFB‐Na/DFB molar feed ratios of up to 60/40 and SPPESs with sulfonated 4‐fluorophenyl sulfone/DFS molar feed ratios of up to 50/50 were cast from N,N‐dimethylacetamide polymer solutions. Membrane films in acid form were then obtained by the treatment of the sodium‐form membrane films in 2 N sulfuric acid at room temperature. An increase in the number of sulfonate groups in the copolymers resulted in an increased glass‐transition temperature and enhanced membrane hydrophilicity. The sodium‐form copolymers were thermally more stable than their acid forms. The proton conductivities of the acid‐form copolymers with sulfonated monomer/unsulfonated monomer molar feed ratios of 0.5 and 0.6 were higher than 10?2 S/cm and increased with temperature; they were less temperature‐dependent than those of the postsulfonated products. SPPESH‐50 showed higher conductivity than the corresponding postsulfonated poly(phthalazinone ether sulfone). © 2003 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 41: 2731–2742, 2003  相似文献   

18.
New sulfonated poly(imidoaryl ether sulfone) copolymers derived from sulfonated 4,4′‐dichlorodiphenyl sulfone, 4,4′‐dichlorodiphenyl sulfone, and imidoaryl biphenol were evaluated as polymer electrolyte membranes for direct methanol fuel cells. The sulfonated membranes were characterized with Fourier transform infrared spectroscopy, thermogravimetric analysis, and proton nuclear magnetic resonance spectra. The state of water in the membranes was measured with differential scanning calorimetry, and the existence of free water and bound water was discussed in terms of the sulfonation level. The 10 wt % weight loss temperatures of these copolymers were above 470 °C, indicating excellent thermooxidative stability to meet the severe criteria of harsh fuel‐cell conditions. The proton conductivities of the membranes ranged from 3.8 × 10?2 to 5 × 10?2 S/cm at 90 °C, depending on the degree of sulfonation. The sulfonated membranes maintained the original proton conductivity even after a boiling water test, and this indicated the excellent hydrolytic stability of the membranes. The methanol permeabilities ranged from 1.65 × 10?8 to 5.14 × 10?8 cm2/s and were lower than those of other conventional sulfonated ionomer membranes, particularly commercial perfluorinated sulfonated ionomer (Nafion). The properties of proton and methanol transport were discussed with respect to the state of water in the membranes. © 2005 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 43: 5620–5631, 2005  相似文献   

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