普鲁士蓝
阴极
材料科学
电化学
焓
离子
熵(时间箭头)
化学物理
组态熵
单斜晶系
金属
晶体结构
结晶学
化学
热力学
电极
物理化学
冶金
物理
有机化学
作者
Yueyue He,Sören L. Dreyer,Yin‐Ying Ting,Yuan Ma,Yang Hu,Damian Goonetilleke,Yushu Tang,Thomas Diemant,Bei Zhou,Piotr M. Kowalski,Maximilian Fichtner,Horst Hahn,Jasmin Aghassi‐Hagmann,Torsten Brezesinski,Ben Breitung,Yanjiao Ma
标识
DOI:10.1002/anie.202315371
摘要
Abstract The high‐entropy approach is applied to monoclinic Prussian White (PW) Na‐ion cathodes to address the issue of unfavorable multilevel phase transitions upon electrochemical cycling, leading to poor stability and capacity decay. A series of Mn‐based samples with up to six metal species sharing the N‐coordinated positions was synthesized. The material of composition Na 1.65 Mn 0.4 Fe 0.12 Ni 0.12 Cu 0.12 Co 0.12 Cd 0.12 [Fe(CN) 6 ] 0.92 □ 0.08 ⋅ 1.09H 2 O was found to exhibit superior cyclability over medium/low‐entropy and conventional single‐metal PWs. We also report, to our knowledge for the first time, that a high‐symmetry crystal structure may be advantageous for high‐entropy PWs during battery operation. Computational comparisons of the formation enthalpy demonstrate that the compositionally less complex materials are prone to phase transitions, which negatively affect cycling performance. Based on data from complementary characterization techniques, an intrinsic mechanism for the stability improvement of the disordered PW structure upon Na + insertion/extraction is proposed, namely the dual effect of suppression of phase transitions and mitigation of gas evolution.
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