Kim Yong Min, Kim Hyun-Seung, Park Bo Keun, Yang Jin Hyeok, Leem Han Jun, Yu Jisang, Kim Siwon, Kim So Yeun, Lee Jong-Won, Park Min-Sik, Kim Ki Jae
Department of Energy Science, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
Advanced Batteries Research Center, Korea Electronics Technology Institute, 25, Saenari-ro, Seongnam, 13509, Republic of Korea.
Small. 2023 Jul;19(28):e2301754. doi: 10.1002/smll.202301754. Epub 2023 Mar 27.
The uncontrollable dendritic growth of metallic lithium during repeated cycling in carbonate electrolytes is a crucial obstacle hindering the practical use of Li-metal batteries (LMBs). Among numerous approaches proposed to mitigate the intrinsic constraints of Li metal, the design of a functional separator is an attractive approach to effectively suppress the growth of Li dendrites because direct contact with both the Li metal surface and the electrolyte is maintained. Here, a newly designed all-in-one separator containing bifunctional CaCO nanoparticles (CPP separator) is proposed to achieve the flattening of Li deposits on the Li electrode. Strong interactions between the highly polar CaCO nanoparticles and the polar solvent reduces the ionic radius of the Li -solvent complex, thus increasing the Li transference number and leading to a reduced concentration overpotential in the electrolyte-filled separator. Furthermore, the integration of CaCO nanoparticles into the separator induces the spontaneous formation of mechanically-strong and lithiophilic CaLi at the Li/separator interface, which effectively decreases the nucleation overpotential toward Li plating. As a result, the Li deposits exhibit dendrite-free planar morphologies, thus enabling excellent cycling performance in LMBs configured with a high-Ni cathode in a carbonate electrolyte under practical operating conditions.
在碳酸盐电解质中反复循环时,金属锂不可控的枝晶生长是阻碍锂金属电池(LMBs)实际应用的关键障碍。在为缓解锂金属固有限制而提出的众多方法中,设计功能性隔膜是有效抑制锂枝晶生长的一种有吸引力的方法,因为它能保持与锂金属表面和电解质的直接接触。在此,提出了一种新设计的包含双功能碳酸钙纳米颗粒的一体化隔膜(CPP隔膜),以实现锂电极上锂沉积物的平整化。高极性碳酸钙纳米颗粒与极性溶剂之间的强相互作用减小了锂-溶剂络合物的离子半径,从而提高了锂迁移数,并降低了充满电解质的隔膜中的浓差过电位。此外,将碳酸钙纳米颗粒整合到隔膜中会在锂/隔膜界面诱导机械强度高且亲锂的CaLi自发形成,这有效地降低了锂电镀的成核过电位。结果,锂沉积物呈现无枝晶的平面形态,从而在实际操作条件下,在配备高镍阴极的碳酸盐电解质的LMBs中实现了优异的循环性能。