材料科学
能量转换
钙钛矿(结构)
纳米技术
联轴节(管道)
结构稳定性
无定形固体
化学物理
能源景观
储能
扩散
高效能源利用
电子结构
理论(学习稳定性)
太阳能转换
数码产品
能量(信号处理)
可持续能源
生化工程
层状双氢氧化物
能量转换效率
离子
插层(化学)
复杂系统
水滑石
工程物理
分子动力学
能量转移
钥匙(锁)
作者
Yuqing Wang,Shuaibing Heng,Luoyin Zhao,Dingji Li,Longchang Tang,Minghua Chen,Yijiang Liu,Zhiqun Lin
摘要
High-entropy hydroxides (HEHs) have attracted growing interest as multifunctional materials for energy conversion and storage. Their multi-element compositions allow local coordination environments and electronic structures to be tailored, which accelerates interfacial charge transfer and optimizes reaction kinetics for electrocatalysis. Entropy-stabilized lattices and distortion-controlled diffusion pathways further support reversible ion transport and structural stability, leading to enhanced rate capability and cycling stability in energy storage. Furthermore, beyond the hydrotalcite structure, HEHs cover a structural landscape including perovskite and amorphous phases, which are accompanied by electronic coupling and coordination effects that enhance overall performance. However, the multicomponent nature of HEHs complicates mechanistic analysis and limits their practical application. Key bottlenecks include clarifying the specific roles of individual elements, the limited understanding of dynamic structural evolution and its coupling with reaction processes, and the challenge of identifying the main origins of performance degradation. To address the above issues, this article systematically reviews recent advances in HEHs for energy conversion and storage, highlighting definitions, fundamental effects, synthesis routes, and regulation strategies, while using representative studies to clarify how composition and structure govern performance. Finally, we discuss new opportunities and challenges for HEHs in energy conversion and storage, and propose future research directions and optimization paths.
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