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采用非对称策略实现太阳能-热能-电能一体化蒸发器九格阵列,同时获取清洁水和电力。

Achieving Solar-Thermal-Electro Integration Evaporator Nine-Grid Array with Asymmetric Strategy for Simultaneous Harvesting Clean Water and Electricity.

作者信息

Ma Junli, Guo Zhenzhen, Han Xu, Lu Heng, Guo Kaixin, Xin Jianguo, Deng Chaoyong, Wang Xianbao

机构信息

School of Integrated Circuits and Electronics, Beijing Institute of Technology, Beijing, 100081, P. R. China.

School of Chemistry and Chemical Engineering, Henan Institute of Science and Technology, Xinxiang, 473003, P. R. China.

出版信息

Adv Sci (Weinh). 2023 Nov;10(31):e2303815. doi: 10.1002/advs.202303815. Epub 2023 Sep 22.

Abstract

Water evaporation is a ubiquitous and spontaneous phase transition process. The utilization of solar-driven interface water evaporation that simultaneously obtains clean water and power generation can effectively alleviate people's concerns about fresh water and energy shortages. However, it remains a great challenge to efficiently integrate the required functions into the same device to reduce the complexity of the system and alleviate its dependence on solar energy to achieve full-time operation. In this work, a multifunctional device based on reduced graphene oxide (RGO)/Mn O /Al O composite nanomaterials is realized by an asymmetric strategy for effective solar-thermal-electro integration that can induce power generation by water evaporation in the presence/absence of light. Under one sun irradiation, the solar-driven evaporation rate and output voltage are 1.74 kg m  h and 0.778 V, respectively. More strikingly, the nine-grid evaporation/power generation array integrated with multiple devices in series has the advantages of small volume, large evaporation area, and high power generation, and can light up light-emitting diodes (LEDs), providing the possibility for large-scale production and application. Based on the high photothermal conversion efficiency and power production capacity of the RGO/Mn O /Al O composite evaporation/generator, it will be a promising energy conversion device for future sustainable energy development and applications.

摘要

水蒸发是一个普遍存在且自发的相变过程。利用太阳能驱动界面水蒸发同时获取清洁水和发电,能够有效缓解人们对淡水和能源短缺的担忧。然而,将所需功能高效集成到同一装置中以降低系统复杂性并减轻其对太阳能的依赖以实现全时运行,仍然是一个巨大的挑战。在这项工作中,通过一种不对称策略实现了一种基于还原氧化石墨烯(RGO)/MnO/AlO复合纳米材料的多功能装置,用于有效的太阳能-热-电集成,该装置在有光/无光条件下都能通过水蒸发诱导发电。在一个太阳光照下,太阳能驱动的蒸发速率和输出电压分别为1.74 kg m h和0.778 V。更引人注目的是,九个网格的蒸发/发电阵列由多个串联的装置集成而成,具有体积小、蒸发面积大、发电量大的优点,并且能够点亮发光二极管(LED),为大规模生产和应用提供了可能性。基于RGO/MnO/AlO复合蒸发/发电机的高光热转换效率和发电能力,它将是未来可持续能源开发和应用中一种很有前景的能量转换装置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fff/10625061/35d7962d8afe/ADVS-10-2303815-g001.jpg

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