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具有新型氮改性MXene/单壁碳纳米管层状结构的柔性热电电极用于高效收集低品位热能

Flexible Thermoelectric Electrode with a New Nitrogen-Modified MXene/SWCNT Layered Structure for Efficient Low-Grade Thermal Energy Collection.

作者信息

Li Pinda, Zhao Xueling, Ding Yaxin, Chen Lifei, Wang Xin, Xie Huaqing

机构信息

School of Energy and Materials, Shanghai Key Laboratory of Engineering Materials Application and Evaluation, Shanghai Polytechnic University, Shanghai 201209, China.

Shanghai Thermophysical Properties Big Data Professional Technical Service Platform, Shanghai Engineering Research Center of Advanced Thermal Functional Materials, Shanghai 201209, China.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 21;16(33):43626-43635. doi: 10.1021/acsami.4c08559. Epub 2024 Aug 12.

Abstract

Confronting the global challenge of energy efficiency in the backdrop of environmental concerns, the innovation of a flexible thermoelectric electrode marks a significant stride forward, especially in the realm of low-temperature heat recovery. This investigation unveils a pioneering electrode material, a nitrogen-doped SWCNT/MXene bilayer thin film, which was meticulously engineered for thermoelectric systems. Surpassing the conventional Pt electrode with inherent inflexibility and prohibitive cost, our proposed electrode showcases excellent ductility alongside commendable thermoelectric properties. Our electrodes demonstrate significant advancement, achieving a thermopower output of 14.11 μW·cm with the Seebeck coefficient escalating to 1.61 mV·K even at a modest temperature differential of 40 °C. The results mark a substantial 32% enhancement in thermoelectric performance compared to the power output at 10.69 μW·cm for a Pt electrode under similar conditions. This remarkable improvement underscores the superior efficiency and potential of our electrodes for practical thermoelectric application, offering a viable and cost-effective alternative to traditional Pt-based solutions. This innovation not only positions itself as a formidable contender to Pt electrodes but also signals a new dawn for efficient thermoelectric energy harvesting, underscored by the material's scalability and ready availability.

摘要

在环境问题的背景下应对全球能源效率挑战,柔性热电电极的创新标志着向前迈出了重要一步,尤其是在低温热回收领域。本研究揭示了一种开创性的电极材料,即氮掺杂单壁碳纳米管/碳化钛多层薄膜,它是为热电系统精心设计的。我们提出的电极超越了传统的铂电极,后者具有固有的刚性和高昂的成本,展示出出色的延展性以及值得称赞的热电性能。我们的电极取得了显著进展,即使在40°C的适度温差下,热功率输出也达到了14.11 μW·cm,塞贝克系数升至1.61 mV·K。结果表明,与类似条件下铂电极10.69 μW·cm的功率输出相比,热电性能大幅提高了32%。这一显著改进凸显了我们的电极在实际热电应用中的卓越效率和潜力,为传统铂基解决方案提供了一种可行且经济高效的替代方案。这一创新不仅使其成为铂电极的有力竞争者,也标志着高效热电能量收集的新曙光,材料的可扩展性和易获取性进一步凸显了这一点。

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