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A rechargeable molecular solar thermal system below 0 °C.
Zhichun Shangguan1, Wenjin Sun1, Zhao-Yang Zhang1
1School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Laboratory of Electrical Insulation and Thermal Aging, Key Laboratory of Thin Film and Microfabrication, Ministry of Education, Shanghai Jiao Tong University Shanghai 200240 China litao1983@sjtu.edu.cn.
Researchers developed novel photochemical molecular thermal energy storage systems (MOST-PCMs) using azopyrazoles. These systems capture and release energy below 0°C, offering efficient thermal regulation and high energy density.
Area of Science:
- Materials Science
- Photochemistry
- Energy Storage
Background:
- Optimal temperature control is vital across diverse applications, including chemical processes, electronics, and climate regulation.
- Photochemical molecular thermal energy storage systems (MOST-PCMs) present a promising approach for capturing and managing thermal energy.
- Existing MOST-PCMs often face limitations in operating temperature range and energy density.
Purpose of the Study:
- To design and synthesize visible-light-responsive azopyrazoles capable of integrating MOST and phase change materials (PCMs).
- To demonstrate energy capture and release below 0 °C using light stimuli.
- To achieve high energy density by co-harvesting light and ambient thermal energy.
Main Methods:
- Synthesis of visible-light-responsive azopyrazole compounds.
- Integration of azopyrazoles with phase change materials to create MOST-PCMs.
- Characterization of energy storage and release properties under controlled light irradiation and temperatures.
- Fabrication of photo-controlled transparent coatings for thermal regulation demonstration.
Main Results:
- A series of azopyrazoles were successfully coupled with PCMs for energy storage below 0 °C.
- The MOST-PCMs were charged using blue light at -1 °C and discharged heat using green light.
- High energy density of 0.25 MJ kg-1 was achieved through combined light and thermal energy harvesting.
- Demonstrated photo-controlled transparency coatings achieved a temperature difference of up to 22.7 °C against sub-zero surroundings.
Conclusions:
- The developed azopyrazole-based MOST-PCMs effectively store and release thermal energy below 0 °C using light triggers.
- This approach enables co-harvesting of solar and ambient thermal energy, leading to high energy density.
- The study provides molecular design principles for advanced MOST-PCMs applicable to a wide temperature range, including sub-zero conditions.
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