College of Mechanics and Materials, Hohai University, Nanjing, 210098, China.
School of Chemistry Physics and Mechanical Engineering, Queensland University of Technology (QUT), 2 George Street, Brisbane, QLD, 4001, Australia.
Adv Mater. 2019 Nov;31(48):e1903415. doi: 10.1002/adma.201903415. Epub 2019 Sep 8.
Under the double pressures of both the energy crisis and environmental pollution, the exploitation and utilization of hydrogen, a clean and renewable power resource, has become an important trend in the development of sustainable energy-production and energy-consumption systems. In this regard, the electrocatalytic hydrogen evolution reaction (HER) provides an efficient and clean pathway for the mass production of hydrogen fuel and has motivated the design and construction of highly active HER electrocatalysts of an acceptable cost. In particular, graphene-based electrocatalysts commonly exhibit an enhanced HER performance owing to their distinctive structural merits, including a large surface area, high electrical conductivity, and good chemical stability. Considering the rapidly growing research enthusiasm for this topic over the last several years, herein, a panoramic review of recent advances in graphene-based electrocatalysts is presented, covering various advanced synthetic strategies, microstructural characterizations, and the applications of such materials in HER electrocatalysis. Lastly, future perspectives on the challenges and opportunities awaiting this emerging field are proposed and discussed.
在能源危机和环境污染的双重压力下,氢气作为一种清洁可再生的能源资源的开发和利用,已成为可持续能源生产和消费系统发展的重要趋势。在这方面,电催化析氢反应(HER)为大规模生产氢气燃料提供了一种高效、清洁的途径,激发了具有可接受成本的高活性 HER 电催化剂的设计和构建。特别是,基于石墨烯的电催化剂由于其独特的结构优势,通常表现出增强的 HER 性能,包括大的表面积、高导电性和良好的化学稳定性。考虑到近年来人们对这一课题的研究兴趣迅速增长,本文全面综述了基于石墨烯的电催化剂的最新进展,涵盖了各种先进的合成策略、微观结构表征以及这些材料在 HER 电催化中的应用。最后,对这一新兴领域面临的挑战和机遇提出并讨论了未来的展望。