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首页> 外文期刊>American Chemical Society, Division of Fuel Chemistry, Preprints >QUATERNARY PHOSPHONIUM-BASED HYDROXIDE EXCHANGE MEMBRANES FOR
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QUATERNARY PHOSPHONIUM-BASED HYDROXIDE EXCHANGE MEMBRANES FOR

机译:季铵盐基氢氧化物交换膜

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摘要

As the ultimate power source, solar energy is clean, abundant, and free. Direct solar electricity (solar cell or solar thermal) makes up an important portion of the total energy supply of the US today, and it is expected to grow rapidly in the future. The intrinsic intermittency of solar energy brings the challenging problems in energy conversion and storage. By switching the working ion in polymer electrolytes from proton to hydroxide (OH−), hydroxide exchange membranes (HEMs) have shown the promise to significantly reduce costs, the top commercialization barrier, for a number of electrochemical energy conversion/storage devices including fuel cells, electrolyzers, redox flow batteries, and solar hydrogen generators. For instance, the simple coupling of a fuel cell and an electrolyzer could offer a longterm (months to years) storage solution using H2 as the storage medium; and the redox flow batteries could serve the middle-term (hours to days) storage needs. Different from the conventional proton exchange membranes (PEMs), HEMs have the ability to work with non-precious yet active metal electrocatalysts and themselves are also inexpensive [1]. Equally importantly, the HEMs are completely free from the problems of electrolyte leakage or metal (bi)carbonate formation that the traditional liquid base electrolytes usually bring
机译:作为最终的能源,太阳能是清洁,丰富和免费的。如今,直接太阳能(太阳能电池或太阳能)占美国总能源供应的重要部分,并且有望在未来迅速增长。太阳能的固有间歇性在能量转换和存储方面带来了挑战性的问题。通过将聚合物电解质中的工作离子从质子转换为氢氧化物(OH-),氢氧化物交换膜(HEM)有望显着降低成本,这是许多电化学能源转换/存储设备(包括燃料电池)的主要商业化障碍,电解槽,氧化还原液流电池和太阳能氢气发生器。例如,燃料电池和电解槽的简单连接可以使用H2作为存储介质,提供长期(数月至数年)的存储解决方案。氧化还原液流电池可以满足中期(数小时至数天)的存储需求。与传统的质子交换膜(PEMs)不同,HEMs具有与非贵重而活性金属电催化剂一起工作的能力,而且它们本身也很便宜[1]。同样重要的是,HEM完全摆脱了传统液基电解质通常带来的电解质泄漏或金属(碳酸氢盐)形成问题

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