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Atomic Modulation Structural Design and Systematic Optimization for Efficient Electrochemical Nitrogen Reduction

机译:高效电化学还原氮的原子调制结构设计和系统优化

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摘要

Ammonia (NH ) is a pivotal precursor in fertilizer production and a potential energy carrier. Currently, ammonia production worldwide relies on the traditional Haber–Bosch process, which consumes massive energy and has a large carbon footprint. Recently, electrochemical dinitrogen reduction to ammonia under ambient conditions has attracted considerable interest owing to its advantages of flexibility and environmental friendliness. However, the biggest challenge in dinitrogen electroreduction, i.e., the low efficiency and selectivity caused by poor specificity of electrocatalysts/electrolytic systems, still needs to be overcome. Although substantial progress has been made in recent years, acquiring most available electrocatalysts still relies on low efficiency trial‐and‐error methods. It is thus imperative to establish some critical guiding principles for nitrogen electroreduction toward a rational design and accelerated development of this field. Herein, a basic understanding of dinitrogen electroreduction processes and the inherent relationships between adsorbates and catalysts from fundamental theory are described, followed by an outline of the crucial principles for designing efficient electrocatalysts/electrocatalytic systems derived from a systematic evaluation of the latest significant achievements. Finally, the future research directions and prospects of this field are given, with a special emphasis on the opportunities available by following the guiding principles.
机译:氨(NH)是肥料生产中的关键前体和潜在的能量载体。当前,全球范围内的氨生产都依赖于传统的哈伯-博世(Haber-Bosch)工艺,该工艺消耗大量能源并且碳足迹很大。近来,由于其柔韧性和环境友好性的优点,在环境条件下将电化学二氮还原成氨引起了相当大的兴趣。然而,仍然需要克服二氮电还原中的最大挑战,即,由于电催化剂/电解体系的特异性差而导致的低效率和选择性。尽管近年来取得了长足的进步,但购买大多数可用的电催化剂仍然依赖于低效率的反复试验方法。因此,有必要为氮电还原建立一些关键的指导原则,以实现该领域的合理设计和加速发展。在此,从基本理论出发,描述了对二氮电还原过程的基本理解以及吸附物和催化剂之间的固有关系,然后概述了从对最新重大成就的系统评价中得出的设计高效电催化剂/电催化体系的关键原理。最后,给出了该领域的未来研究方向和前景,特别强调了遵循指导原则可获得的机会。

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