Xie Junpeng, Yu Zhenjiang, Li Jinliang, Zhang Qing, Mai Wenjie, Tai Zhixin, Liu Yajie, Guo Zaiping
Advanced Energy Storage Materials and Technology Research Center, Guangdong-Hong Kong Joint Laboratory for Carbon Neutrality, Jiangmen Laboratory of Carbon Science and Technology Jiangmen 529199 Guangdong Province China
Department of Physics, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Materials, Jinan University Guangzhou 510632 China.
Chem Sci. 2025 Aug 15. doi: 10.1039/d5sc02822a.
Potassium (K) metal anodes have attracted widespread attention in the realm of energy storage due to their cost-effectiveness, abundance, and high theoretical capacity. However, the undesirable K-dendrite growth accompanied by void formation upon prolonged cycling presents formidable obstacles to their real-world applications. Herein, phosphorus-based electrolytes are developed based on the electrolyte additive design criteria of steric hindrance, polar ability, and decomposition preference to enhance the anode/electrolyte interface stability. The additive triphenyl phosphate in the electrolyte could regulate the K solvation structure and promote the formation of an inorganic P-rich solid-electrolyte interphase layer, thus ultimately mitigating interfacial polarization, augmenting transport properties, and stabilizing the interphase. Therefore, we have successfully achieved a dense and dendrite-free K metal anode, exhibiting improved coulombic efficiency and prolonged lifespan. Our design tactic demonstrates the promising application of K metal batteries in achieving elevated safety, high energy densities, and extended operational longevity.
钾(K)金属阳极因其成本效益、丰富性和高理论容量而在能量存储领域引起了广泛关注。然而,长时间循环时伴随空洞形成的不良钾枝晶生长给其实际应用带来了巨大障碍。在此,基于空间位阻、极性能力和分解偏好的电解质添加剂设计标准开发了磷基电解质,以增强阳极/电解质界面稳定性。电解质中的添加剂磷酸三苯酯可以调节钾溶剂化结构,并促进富含无机磷的固体电解质中间相层的形成,从而最终减轻界面极化、增强传输性能并稳定中间相。因此,我们成功实现了致密且无枝晶生长的钾金属阳极,表现出提高的库仑效率和延长的寿命。我们的设计策略证明了钾金属电池在实现更高安全性、高能量密度和延长运行寿命方面的广阔应用前景。