Shi Xiao-Lei, Wang Lijun, Lyu Wanyu, Cao Tianyi, Chen Wenyi, Hu Boxuan, Chen Zhi-Gang
School of Chemistry and Physics, ARC Research Hub in Zero-emission Power Generation for Carbon Neutrality, and Centre for Materials Science, Queensland University of Technology, Brisbane, Queensland 4000, Australia.
Chem Soc Rev. 2024 Sep 16;53(18):9254-9305. doi: 10.1039/d4cs00361f.
With the increasing demand for energy and the climate challenges caused by the consumption of traditional fuels, there is an urgent need to accelerate the adoption of green and sustainable energy conversion and storage technologies. The integration of flexible thermoelectrics with other various energy conversion technologies plays a crucial role, enabling the conversion of multiple forms of energy such as temperature differentials, solar energy, mechanical force, and humidity into electricity. The development of these technologies lays the foundation for sustainable power solutions and promotes research progress in energy conversion. Given the complexity and rapid development of this field, this review provides a detailed overview of the progress of multifunctional integrated energy conversion and storage technologies based on thermoelectric conversion. The focus is on improving material performance, optimizing the design of integrated device structures, and achieving device flexibility to expand their application scenarios, particularly the integration and multi-functionalization of wearable energy conversion technologies. Additionally, we discuss the current development bottlenecks and future directions to facilitate the continuous advancement of this field.
随着对能源的需求不断增加以及传统燃料消耗所带来的气候挑战,迫切需要加速采用绿色和可持续的能量转换与存储技术。柔性热电材料与其他各种能量转换技术的集成发挥着关键作用,能够将多种形式的能量,如温度差、太阳能、机械力和湿度,转换为电能。这些技术的发展为可持续电力解决方案奠定了基础,并推动了能量转换领域的研究进展。鉴于该领域的复杂性和快速发展,本综述详细概述了基于热电转换的多功能集成能量转换与存储技术的进展。重点在于提高材料性能、优化集成器件结构设计以及实现器件的柔性,以扩大其应用场景,特别是可穿戴能量转换技术的集成和多功能化。此外,我们还讨论了当前的发展瓶颈和未来方向,以促进该领域的持续进步。