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Organic-inorganic backbone with high contents of proton conducting groups: A newly designed high performance proton conductor

机译:有机 - 无机骨架,具有高含量的质子导电组:新设计的高性能质子导体

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To prepare new high temperature organic-inorganic proton conductor for applications in proton exchange membrane fuel cells (PEMFC), 2,4,6-triphosphono-1,3,5-triazine (TPT) was synthesized and reacted with three different types of metal ions (Ce, Zr and Fe) in varied molar ratios. In each TPT molecule, three phosphonic acid groups were introduced into the triazine ring to obtain an organic compound with high content of proton conducting groups, which was then reacted with metal ions to ensure the insolubility in water aiming to avoid leaking during PEMFC operation. CeTPT(1:2) exhibited good thermal stability up to 200 degrees C and showed crystalline phase. MTPT exhibited high ion exchange capacity (IEC, 1.53 -2.12 meq. g(-1)). CeTPT(1:2) exhibited highest proton conductivity among all samples, which reached 0.116, 0.070 and 0.034 S cm(-1) at 100% relative humidity (RH), 50% RH and anhydrous conditions at 180 degrees C, respectively. The corresponding activation energy for proton conduction was 14.5, 16.0 and 21.5 kJ mol(-1) at 100% RH, 50% RH and anhydrous conditions, respectively. The mechanism for proton conduction was proposed according to the activation energy. The proton conductor can find promising applications in fuel cells, corrosion inhibition and water desalination due to its good thermal stability and high IEC. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:为了制备新的高温有机 - 无机质子导体,用于质子交换膜燃料电池(PEMFC)中的应用,合成2,4,6-三膦酸乙烯-1,3,5-三嗪(TPT),并与三种不同类型的金属反应不同摩尔比中的离子(Ce,Zr和Fe)。在每个TPT分子中,将三个膦酸基团引入三嗪环中,得到具有高含量质子传导基团的有机化合物,然后与金属离子反应,以确保在水中的含水中的不溶性,以避免在PEMFC操作期间避免泄漏。 CTTP(1:2)表现出良好的热稳定性,可达200​​℃并显示结晶相。 MTPT表现出高离子交换能力(IEC,1.53 -2.12 Meq.g(-1))。 CETPT(1:2)在所有样品中表现出最高的质子电导率,其在100%相对湿度(RH),50%RH和180℃下达到0.116,0.070和0.034scm(-1)。对于100%RH,50%RH和无水条件,质子传导的相应活化能量为14.5,16.0和21.5kJ摩尔(-1)。根据活化能提出了质子传导的机制。质子导体可以在其良好的热稳定性和高IEC中找到燃料电池,腐蚀抑制和水脱盐中的有前途的应用。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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