利用阴离子交换膜开发用于水电解制氢的无金属生物炭基材料:创造循环经济

Gopi KrishnaBhonagiri, Chandrima Roy, Himabindu V, Shilpa ChakraCH
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摘要

近年来,由于全球人口增长和能源需求增加,氢能源领域出现了稳步增长。化石燃料的快速枯竭和气候变化问题促使各国开始探索替代能源。氢能就是这样一种选择,因为氢能技术简单、成本低廉。碱性水电解是利用可再生能源生产氢气的最简单方法之一,氧气是唯一的副产品,因此不会造成碳足迹。然而,需要立即关注如何最大限度地降低电解槽组件、维护和能源成本。市场上的商用质子交换膜水电解槽(PEM)由于采用了价格昂贵的 Nafion 和其他 PFSA 膜、钛端板和贵金属电催化剂,因此资本成本较高。因此,研究人员正在研究在水/碱基电解槽中使用阴离子交换膜(AEM),利用非贵金属电催化剂和低成本金属端板生产氢气。本文探讨了将废弃椰子壳提取的生物炭作为电催化剂基质的碳基质,以取代水电解槽中其他高成本的电催化剂碳载体。文章研究了椰壳生物炭的结构和电学特性,并将其与其他可用的碳载体进行了比较。为了进一步提高电解槽的性能,该方法进一步扩展到 MEA(膜电极组件)级别,以研究无金属电催化剂在实时环境条件下的行为。
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Development of metal free biochar based material for water electrolysis hydrogen production using anion exchange membrane: Creating circular economy
In recent days, a steady growth is being noted in hydrogen energy field owing to the global rise in population and increased energy demand. Fast depletion of fossil-based fuels and climate change issues are driving nations towards exploring an alternate energy resource. Hydrogen energy is one such an option owing to availability of simple and cost intensive technology involvement. Alkaline water electrolysis is one of the simplest ways of producing hydrogen utilizing renewable energy and oxygen as the only byproduct thus not contributing to carbon footprint. However, immediate attention is needed to minimize the cost of electrolyzer components, maintenance and energy. Commercial proton exchange membrane water electrolyzers (PEM) in market employ large capital cost due to high-priced Nafion and other PFSA membranes, titanium endplates and noble metal-based electrocatalysts. As a consequence, researchers are looking into the usage of Anionic exchange membrane (AEM) for water/alkali based electrolyzer for producing hydrogen with non-noble metal electrocatalysts and low-cost metal end plates. In this article a waste coconut shell derived biochar is explored as the carbon matrix for base of electrocatalysts to replace other high-cost carbon support for electrocatalyst in water electrolyzer. The structural and electrical properties of the coconut shell biochar are studied and compared with other available carbon supports. To deep drive in the electrolyzer performance this approach is further extended to MEA (Membrane Electrode Assembly) level to study the metal free electrocatalyst behavior in real-time environmental conditions.
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