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The challenge of storage in the hydrogen energy cycle:nanostructured hydrides as a potential solution

机译:氢能循环中储存的挑战:纳米结构氢化物作为潜在解决方案

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摘要

Hydrogen has the capacity to provide society with the means to carry ‘green’ energy between the point of generation and the point of use. A sustainable energy society in which a hydrogen economy predominates will require renewable generation provided, for example, by artificial photosynthesis and clean, efficient energy conversion effected, for example, by hydrogen fuel cells. Vital in the hydrogen cycle is the ability to store hydrogen safely and effectively. Solid-state storage in hydrides enables this but no material yet satisfies all the demands associated with storage density and hydrogen release and uptake; particularly for mobile power. Nanochemical design methods present potential routes to overcome the thermodynamic and kinetic hurdles associated with solid state storage in hydrides. In this review we discuss strategies of nanosizing, nanoconfinement, morphological/dimensional control, and application of nanoadditives on the hydrogen storage performance of metal hydrides. We present recent examples of how such approaches can begin to address the challenges and an evaluation of prospects for further development.
机译:氢有能力为社会提供在发电点和使用点之间运载“绿色”能源的手段。在氢经济占主导地位的可持续能源社会中,将需要可再生能源的产生,例如,通过人工光合作用以及清洁,高效的能源转化(例如通过氢燃料电池实现)。氢循环的关键是安全有效地储存氢的能力。氢化物中的固态存储可以实现这一点,但是还没有一种材料可以满足与存储密度以及氢释放和吸收相关的所有要求;特别是对于移动电源。纳米化学设计方法提出了克服与氢化物固态存储相关的热力学和动力学障碍的潜在途径。在这篇综述中,我们讨论了纳米化,纳米约束,形态/尺寸控制以及纳米添加剂对金属氢化物储氢性能的应用策略。我们提供了最近的例子,说明这些方法如何开始应对挑战,并评估了进一步发展的前景。

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