将合成与电化学结合起来,以实现氢在金属氢化物中的可逆储存

Matthew Nava*, Lina M. Zarnitsa and Martin-Louis Y. Riu, 
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引用次数: 0

摘要

由于氢气(H2)具有较高的重力能量密度,并且从可再生能源中提取后可作为清洁燃料,因此被认为是能量存储的首选;然而,其较低的体积密度限制了其更广泛的应用。通过将氢气可逆地结合到化学键中进行化学储存,为解决氢气体积密度低的问题提供了一种可行的方案,从而避免了与物理储存方法相关的能量密度不足和大量基础设施投资的问题。金属氢化物具有很高的重力容量,并可通过纳米结构和合金化进行调整,因此有望成为化学储存的候选材料。此外,金属氢化物/H2 的相互转化可与电化学相结合,这为解决与传统热化学平台相关的一些挑战提供了潜在的解决方案。在本视角中,我们将介绍与电化学介导的金属氢化物/H2 相互转化相关的预期挑战,包括金属氢化物形成的热力学效率、缓慢的动力学和电极钝化。此外,我们还通过设计可控制金属氢化物溶解度、颗粒形态和氢化物亲和性等因素的分子介质,提出了解决这些问题的潜在方案。电化学介导的金属氢化物/氢气相互转化平台的实现,为解决与储氢平台相关的挑战引入了新的工具,并有助于室温储氢平台的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Coupling of Synthesis and Electrochemistry to Enable the Reversible Storage of Hydrogen as Metal Hydrides

Given its high gravimetric energy density and status as a clean fuel when derived from renewables, hydrogen (H2) is considered a premier candidate for energy storage; however, its low volumetric density limits its broader application. Chemical storage through the reversible incorporation of H2 into chemical bonds offers a promising solution to its low volumetric density, circumventing subpar energy densities and substantial infrastructure investments associated with physical storage methods. Metal hydrides are promising candidates for chemical storage because of their high gravimetric capacity and tunability through nanostructuring and alloying. Moreover, metal hydride/H2 interconversion may be interfaced with electrochemistry, which offers potential solutions to some of the challenges associated with traditional thermochemical platforms. In this Perspective, we describe anticipated challenges associated with electrochemically mediated metal hydride/H2 interconversion, including thermodynamic efficiencies of metal hydride formation, sluggish kinetics, and electrode passivation. Additionally, we propose potential solutions to these problems through the design of molecular mediators that may control factors such as metal hydride solubility, particle morphology, and hydride affinity. Realization of an electrochemically mediated metal hydride/H2 interconversion platform introduces new tools to address challenges associated with hydrogen storage platforms and contributes toward the development of room-temperature hydrogen storage platforms.

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来源期刊
Precision Chemistry
Precision Chemistry 精密化学技术-
CiteScore
0.80
自引率
0.00%
发文量
0
期刊介绍: Chemical research focused on precision enables more controllable predictable and accurate outcomes which in turn drive innovation in measurement science sustainable materials information materials personalized medicines energy environmental science and countless other fields requiring chemical insights.Precision Chemistry provides a unique and highly focused publishing venue for fundamental applied and interdisciplinary research aiming to achieve precision calculation design synthesis manipulation measurement and manufacturing. It is committed to bringing together researchers from across the chemical sciences and the related scientific areas to showcase original research and critical reviews of exceptional quality significance and interest to the broad chemistry and scientific community.
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