材料科学
热能储存
储能
热的
复合材料
相(物质)
能量转换
相变
相变材料
工程物理
化学
气象学
物理
功率(物理)
有机化学
热力学
量子力学
作者
Ali Usman,Mulin Qin,Feng Xiong,Waseem Aftab,Zhenghui Shen,Akbar Bashir,Haiwei Han,Shenghui Han,Ruqiang Zou
出处
期刊:Small methods
[Wiley]
日期:2024-02-07
卷期号:8 (9): e2301458-e2301458
被引量:24
标识
DOI:10.1002/smtd.202301458
摘要
Abstract The high thermal storage density of phase change materials (PCMs) has attracted considerable attention in solar energy applications. However, the practicality of PCMs is often limited by the problems of leakage, poor solar‐thermal conversion capability, and low thermal conductivity, resulting in low‐efficiency solar energy storage. In this work, a new system of MXene‐integrated solid‐solid PCMs is presented as a promising solution for a solar‐thermal energy storage and electric conversion system with high efficiency and energy density. The composite system's performance is enhanced by the intrinsic photo‐thermal behavior of MXene and the heterogeneous phase transformation properties of PCM molecular chains. The optimal composites system has an impressive solar thermal energy storage efficiency of up to 94.5%, with an improved energy storage capacity of 149.5 J g −1 , even at a low MXene doping level of 5 wt.%. Additionally, the composite structure shows improved thermal conductivity and high thermal cycling stability. Furthermore, a proof‐of‐concept solar‐thermal‐electric conversion device is designed based on the optimized M‐SSPCMs and commercial thermoelectric generators, which exhibit excellent energy conversion efficiency. The results of this study highlight the potential of the developed PCM composites in high‐efficiency solar energy utilization for advanced photo‐thermal systems.
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