Junyoung Choi , Myeong Hwan Lee , Un-Seon Heo , Jae-Hong Lim , Kyung-Wan Nam , Jungdon Suk
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Meanwhile, the Au layer functions as a seed for Li deposition, reducing the nucleation overpotential of Li deposition through the Au-Li alloy formation, thus enabling uniform Li deposition. Using synchrotron-based operando X-ray computed tomography (CT), we directly visualized and analyzed the Li growth mechanisms within the Al<sub>2</sub>O<sub>3</sub>@Au dual-layer structure, confirming its role in facilitating uniform Li deposition and effectively preventing dendrite formation. This structural synergy resulted in superior battery performance. the Al<sub>2</sub>O<sub>3</sub>@Au dual-layer demonstrated outstanding performance in NCM811/Li cells (2.6 mAh cm<sup>⁻2</sup>), achieving a capacity retention rate of over 85 % and Coulombic efficiency exceeding 99.8 % after 150 cycles. 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引用次数: 0
摘要
高活性锂(Li)需要精确控制成核和生长,需要稳定的加工技术来制造锂金属电池。本研究提出了一种新的策略,通过无溶剂转移印刷工艺制备由陶瓷(Al2O3)和亲石金属(Au)组成的双层保护涂层来减轻Li枝晶的形成。双层结构由位于Al2O3和Li金属之间的Au层组成,其中Al2O3层抑制枝晶生长,促进Li离子通量均匀。同时,Au层作为Li沉积的种子,通过Au-Li合金的形成降低Li沉积的成核过电位,从而使Li沉积均匀。利用基于同步加速器的operando x射线计算机断层扫描(CT),我们直接可视化和分析了Al2O3@Au双层结构中Li的生长机制,证实了其在促进Li均匀沉积和有效防止枝晶形成中的作用。这种结构的协同作用导致了卓越的电池性能。Al2O3@Au双层膜在NCM811/Li电池(2.6 mAh cm⁻2)中表现出优异的性能,循环150次后容量保持率超过85%,库仑效率超过99.8%。这项研究为稳定锂金属阳极提供了一种可扩展和实用的方法,从而为下一代电池铺平了道路。
Lithophilic metal–ceramic Achieving high durability in lithium-metal batteries via lithophilic metal-ceramic interface engineering
Highly reactive lithium (Li) requires precise control of nucleation and growth, necessitating stable processing techniques for the fabrication of Li-metal batteries. This study proposes a novel strategy to mitigate Li dendrite formation using a dual-layer protective coating composed of a ceramic (Al2O3) and lithophilic metal (Au) fabricated via a solvent-free transfer printing process. The dual-layer structure consists of a Au layer positioned between Al2O3 and Li metal, where the Al2O3 layer suppresses dendrite growth and promotes uniform Li-ion flux. Meanwhile, the Au layer functions as a seed for Li deposition, reducing the nucleation overpotential of Li deposition through the Au-Li alloy formation, thus enabling uniform Li deposition. Using synchrotron-based operando X-ray computed tomography (CT), we directly visualized and analyzed the Li growth mechanisms within the Al2O3@Au dual-layer structure, confirming its role in facilitating uniform Li deposition and effectively preventing dendrite formation. This structural synergy resulted in superior battery performance. the Al2O3@Au dual-layer demonstrated outstanding performance in NCM811/Li cells (2.6 mAh cm⁻2), achieving a capacity retention rate of over 85 % and Coulombic efficiency exceeding 99.8 % after 150 cycles. This study offers a scalable and practical approach to stabilizing Li metal anodes, thus paving the way for next-generation batteries.
期刊介绍:
Energy Storage Materials is a global interdisciplinary journal dedicated to sharing scientific and technological advancements in materials and devices for advanced energy storage and related energy conversion, such as in metal-O2 batteries. The journal features comprehensive research articles, including full papers and short communications, as well as authoritative feature articles and reviews by leading experts in the field.
Energy Storage Materials covers a wide range of topics, including the synthesis, fabrication, structure, properties, performance, and technological applications of energy storage materials. Additionally, the journal explores strategies, policies, and developments in the field of energy storage materials and devices for sustainable energy.
Published papers are selected based on their scientific and technological significance, their ability to provide valuable new knowledge, and their relevance to the international research community.