储能
工艺工程
表征(材料科学)
材料科学
联轴节(管道)
水合物
热能储存
降级(电信)
计算机科学
理论(学习稳定性)
盐(化学)
电化学储能
热的
化学稳定性
温度循环
计算机数据存储
工作(物理)
热稳定性
能量转换
环境科学
能量(信号处理)
生化工程
瞬态(计算机编程)
纳米技术
公共记录
组分(热力学)
笼状水合物
化学工程
热能
复合数
化学
自行车
作者
Madeline R. Morrell,Srivatsa Bhat Kaudur,Jungho Shin,Sadie M. Flagg,Ishita Goyal,Jaechan Pyo,Erik Barbosa,Satyam Bharti,Claudio V. Di Leo,Matthew T. McDowell,Akanksha K. Menon
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2026-01-09
卷期号:11 (2): 1021-1034
被引量:6
标识
DOI:10.1021/acsenergylett.5c03249
摘要
High Resolution Image Download MS PowerPoint Slide Thermochemical materials (TCMs) based on salt hydrates are promising for thermal energy storage as they combine high energy densities with low reaction temperatures. However, their adoption is hindered by poor structural integrity and degradation under hygrothermal cycling. Storage performance is governed not only by the chemical reaction, but also by the coupled thermo-chemo-mechanical behavior that evolves with cycling. Understanding and controlling this coupling across length scales (material-to-reactor) is necessary to improve TCM stability and lifetime. In this perspective, we discuss the shortcomings of current characterization approaches and emphasize the need for measuring transport properties and structural transformations using in situ techniques that capture the dynamic evolution of these materials. We also outline opportunities for multiscale modeling frameworks that link thermodynamics and mechanics, enabling predictive evaluation of composite architectures designed for cycling stability. We conclude by identifying research questions that must be addressed to transform TCMs into viable energy storage technologies.
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