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用于热能储存的2-氨基-2-甲基-1,3-丙二醇的过冷行为

Supercooling Behavior of 2-Amino-2-methyl-1,3-propanediol for Thermal Energy Storage.

作者信息

Wang Xuelian, Bai Jin, Zhang Xian, Shen Xiaobo, Xia Zhengrong, Yu Haijun

机构信息

School of Electronic Engineering, Huainan Normal University, Huainan 232038, China.

Key Laboratory of Materials Physics, Institute of Solid State Physics, The Hefei Institutes of Physical Science (HFIPS), Chinese Academy of Sciences, Hefei 230031, China.

出版信息

Molecules. 2025 May 18;30(10):2206. doi: 10.3390/molecules30102206.

Abstract

With the increasing demand for thermal management in electronic devices, highly efficient and controllable phase change materials have attracted significant attention. The compound 2-amino-2-methyl-1,3-propanediol (AMPD), as a solid-solid phase change material, exhibits remarkable supercooling behavior and a high latent heat storage (Δ = 247.9 J/g). However, its phase transition kinetics and mechanically triggered properties have not been systematically investigated. In this study, the phase transition behavior of AMPD under different cooling rates and thermal cycling conditions was systematically analyzed using differential scanning calorimetry (DSC). Furthermore, the mechanical triggering characteristic of AMPD under a supercooled state was also studied. The results demonstrated that AMPD can maintain a supercooled state for an extended period, and the exothermic enthalpy change (Δ) increased by 17.8% (from 154.1 to 181.6 J/g) during thermal cycling. Additionally, mechanical triggering could induce rapid heat release from AMPD, enabling the on-demand regulation of heat utilization. This study revealed that AMPD enables stable supercooling and controllable heat release via thermal or mechanical triggers, offering a novel strategy for tunable solid-solid phase change materials.

摘要

随着电子设备对热管理的需求不断增加,高效且可控的相变材料受到了广泛关注。化合物2-氨基-2-甲基-1,3-丙二醇(AMPD)作为一种固-固相变材料,表现出显著的过冷行为和高潜热存储(Δ = 247.9 J/g)。然而,其相变动力学和机械触发特性尚未得到系统研究。在本研究中,使用差示扫描量热法(DSC)系统分析了AMPD在不同冷却速率和热循环条件下的相变行为。此外,还研究了AMPD在过冷状态下的机械触发特性。结果表明,AMPD可以长时间保持过冷状态,并且在热循环过程中放热焓变(Δ)增加了17.8%(从154.1 J/g增加到181.6 J/g)。此外,机械触发可以诱导AMPD快速放热,实现热量利用的按需调节。本研究表明,AMPD通过热或机械触发实现稳定的过冷和可控的热释放,为可调谐固-固相变材料提供了一种新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da11/12114152/65c5c5198b60/molecules-30-02206-g001.jpg

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