Zhu Zhengxin, Jiang Taoli, Ali Mohsin, Meng Yahan, Jin Yang, Cui Yi, Chen Wei
Department of Applied Chemistry, School of Chemistry and Materials Science, Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, China.
School of Electrical Engineering, Zhengzhou University, Zhengzhou, Henan 450001, China.
Chem Rev. 2022 Nov 23;122(22):16610-16751. doi: 10.1021/acs.chemrev.2c00289. Epub 2022 Sep 23.
Ever-increasing global energy consumption has driven the development of renewable energy technologies to reduce greenhouse gas emissions and air pollution. Battery energy storage systems (BESS) with high electrochemical performance are critical for enabling renewable yet intermittent sources of energy such as solar and wind. In recent years, numerous new battery technologies have been achieved and showed great potential for grid scale energy storage (GSES) applications. However, their practical applications have been greatly impeded due to the gap between the breakthroughs achieved in research laboratories and the industrial applications. In addition, various complex applications call for different battery performances. Matching of diverse batteries to various applications is required to promote practical energy storage research achievement. This review provides in-depth discussion and comprehensive consideration in the battery research field for GSES. The overall requirements of battery technologies for practical applications with key parameters are systematically analyzed by generating standards and measures for GSES. We also discuss recent progress and existing challenges for some representative battery technologies with great promise for GSES, including metal-ion batteries, lead-acid batteries, molten-salt batteries, alkaline batteries, redox-flow batteries, metal-air batteries, and hydrogen-gas batteries. Moreover, we emphasize the importance of bringing emerging battery technologies from academia to industry. Our perspectives on the future development of batteries for GSES applications are provided.
全球能源消耗的不断增长推动了可再生能源技术的发展,以减少温室气体排放和空气污染。具有高电化学性能的电池储能系统(BESS)对于实现太阳能和风能等可再生但间歇性的能源至关重要。近年来,众多新型电池技术取得了进展,并在电网规模储能(GSES)应用中显示出巨大潜力。然而,由于研究实验室取得的突破与工业应用之间存在差距,它们的实际应用受到了极大阻碍。此外,各种复杂应用需要不同的电池性能。需要将各种电池与不同应用进行匹配,以推动实际储能研究成果。本综述对用于GSES的电池研究领域进行了深入讨论和全面考量。通过制定GSES的标准和措施,系统地分析了实际应用中电池技术的总体要求及关键参数。我们还讨论了一些对GSES具有巨大潜力的代表性电池技术的最新进展和现有挑战,包括金属离子电池、铅酸电池、熔盐电池、碱性电池、液流电池、金属空气电池和氢气电池。此外,我们强调了将新兴电池技术从学术界引入工业界的重要性。我们提供了对用于GSES应用的电池未来发展的观点。