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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Water-free, Proton-Conducting Hybrid Materials for Elevated-Temperature Electrochemical Systems
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Water-free, Proton-Conducting Hybrid Materials for Elevated-Temperature Electrochemical Systems

机译:用于升高的温度电化学系统的无水,质子传导混合材料

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摘要

By reacting TiCl4 with nitrilo, tris(methylenphosphonic acid) (NTMPA) in water solution, a titanium complex gel (Ti-NTMPA) has been prepared. After drying, this gel was powdered and mixed with benzimidazole. The resulting hybrid material, which is insoluble in water and thermally stable up to at least 210 degrees C, possesses proton conductivity on the order of 10(-2) Omega(-1) cm(-1) in fully anhydrous conditions. Due to these characteristics, such Ti-NTMPA/benzimidazole hybrid may be considered for application as a proton conductor in fuel cells or water electrolyzers operating under elevated-temperature and low-humidity conditions. X-ray diffraction, thermogravimetric analysis, and FT-IR spectroscopy show the presence of hydrogen-bonding interaction between Ti-NTMPA and benzimidazole in the hybrid. It appears that the Ti-NTMPA/benzimidazole system forms a solid protic ionic with the "free" (not coordinated to Ti) phosphoric acid moieties and benzimidazole acting, respectively, as Bronsted acid and base. In this way the imidazolic rings can vehiculate the protons provided by the phosphonic groups, thereby conferring hopping-site proton conduction upon this hybrid material even in the absence of water. This work provides proof of the above concepts, thereby demonstrating a general paradigm to design a whole class of hybrid materials with effective water-free proton conductivity.
机译:通过使TiCl4与硝基,Tris(甲基膦酸)(NTMPA)在水溶液中,制备钛络合物(Ti-NTMPA)。干燥后,将该凝胶粉化并与苯并咪唑混合。所得的杂化材料在水中不溶于水并热稳定于至少210℃,在全无水条件下大约为10(-2)Ω(-1)cm(-1)的质子电导率。由于这些特性,可以认为这种Ti-NTMPA /苯并咪唑杂交物在燃料电池或在升高温度和低湿度条件下运行的水电解器中的质子导体应用。 X射线衍射,热重分析和FT-IR光谱显示Ti-NTMPA和苯并咪唑在杂交中的存在氢键相互作用。似乎Ti-NTMPA /苯并咪唑系统分别形成固体质粒离子,其具有“无”(不配位Ti)磷酸部分和苯并咪唑作用,分别为伪造酸和碱。以这种方式,Imidazolic环可以驾驶由膦基团提供的质子,从而在没有水的情况下赋予该混合材料的跳跃现场质子传导。这项工作提供了上述概念的证据,从而展示了一般的范式来设计具有有效无水质子电导率的全类混合材料。

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