Progress on Material Design and Device Fabrication via Coupling Photothermal Effect with Thermoelectric Effect
- PMID: 39063816
- PMCID: PMC11278506
- DOI: 10.3390/ma17143524
Progress on Material Design and Device Fabrication via Coupling Photothermal Effect with Thermoelectric Effect
Abstract
Recovery and utilization of low-grade thermal energy is a topic of universal importance in today's society. Photothermal conversion materials can convert light energy into heat energy, which can now be used in cancer treatment, seawater purification, etc., while thermoelectric materials can convert heat energy into electricity, which can now be used in flexible electronics, localized cooling, and sensors. Photothermoelectrics based on the photothermal effect and the Seebeck effect provide suitable solutions for the development of clean energy and energy harvesting. The aim of this paper is to provide an overview of recent developments in photothermal, thermoelectric, and, most importantly, photothermal-thermoelectric coupling materials. First, the research progress and applications of photothermal and thermoelectric materials are introduced, respectively. After that, the classification of different application areas of materials coupling photothermal effect with thermoelectric effect, such as sensors, thermoelectric batteries, wearable devices, and multi-effect devices, is reviewed. Meanwhile, the potential applications and challenges to be overcome for future development are presented, which are of great reference value in waste heat recovery as well as solar energy resource utilization and are of great significance for the sustainable development of society. Finally, the challenges of photothermoelectric materials as well as their future development are summarized.
Keywords: photothermal effect; photothermoelectric effect; polymer composites; thermoelectric effect.
Conflict of interest statement
The authors declare no conflicts of interest.
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References
-
- Yun J.-S., Choi S., Im S.H. Advances in carbon-based thermoelectric materials for high-performance, flexible thermoelectric devices. Carbon Energy. 2021;3:667–708. doi: 10.1002/cey2.121. - DOI
-
- Dincer I. Renewable energy and sustainable development: A crucial review. Renew. Sustain. Energy Rev. 2000;4:157–175. doi: 10.1016/S1364-0321(99)00011-8. - DOI
-
- Zhang X., Ma C., Song X., Zhou Y., Chen W. The impacts of wind technology advancement on future global energy. Appl. Energy. 2016;184:1033–1037. doi: 10.1016/j.apenergy.2016.04.029. - DOI
-
- Terrapon-Pfaff J.C., Ortiz W., Viebahn P., Kynast E., Flörke M. Water Demand Scenarios for Electricity Generation at the Global and Regional Levels. Water. 2020;12:2482. doi: 10.3390/w12092482. - DOI
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