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用于提高发电效率的混合维度范德华异质结构

Mixed-Dimensional van der Waals Heterostructures for Boosting Electricity Generation.

作者信息

Kong Haoran, Yao Huiying, Li Yuting, Wang Qinhuan, Qiu Xiaopan, Yan Jin, Zhu Jia, Wang Yu

机构信息

State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, P. R. China.

School of Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

ACS Nano. 2023 Sep 26;17(18):18456-18469. doi: 10.1021/acsnano.3c06080. Epub 2023 Sep 12.

Abstract

The emerging technology of harvesting environmental energy using hydrovoltaic devices enriches the conversion forms of renewable energy. It provides more concepts for power supply in micro/nano systems, and hydrovoltaic technology with high performance, usability, and integration is essential for achieving sustainable green energy. Comparing the discovery of multiscale nanomaterials, working layers with innovative microstructures have gradually become the dominant trend in the construction of graphene-based hydrovoltaic devices. However, reports on promoting ion/electron redistribution at the solid-liquid interface through the substrate effect of graphene are accompanied by tedious procedures, nondiverse substrates, and monolithic regulation of enhancement mechanisms. Here, the electrophoretic deposition (EPD)-driven SiC whiskers (SiC)-assisted graphene transfer process is adopted to alleviate the complexity of the device fabrication caused by graphene transfer. The resulting output performance of the graphene/SiC (GS) mesh films is significantly boosted. The high integrity of graphene and prominent negative surface charge near the graphene-droplet interface are derived from the overlayer and underlayer inside the graphene-based mixed-dimensional van der Waals (vdW) heterostructures, respectively. Additionally, a self-powered desalination-monitoring system is designed based on integrated hydrovoltaic devices. Electricity harvested from the ionic solutions is reused for deionization, representing an efficient strategy for energy conversion and utilization.

摘要

利用水力发电装置收集环境能量的新兴技术丰富了可再生能源的转换形式。它为微纳系统中的供电提供了更多概念,而具有高性能、实用性和集成性的水力发电技术对于实现可持续绿色能源至关重要。与多尺度纳米材料的发现相比,具有创新微结构的工作层逐渐成为基于石墨烯的水力发电装置构建的主导趋势。然而,关于通过石墨烯的衬底效应促进固液界面处离子/电子重新分布的报道伴随着繁琐的程序、单一的衬底以及增强机制的整体调控。在此,采用电泳沉积(EPD)驱动的碳化硅晶须(SiC)辅助石墨烯转移过程,以减轻石墨烯转移导致的器件制造复杂性。所得的石墨烯/碳化硅(GS)网状薄膜的输出性能显著提高。石墨烯的高完整性和石墨烯 - 液滴界面附近突出的负表面电荷分别源自基于石墨烯的混合维度范德华(vdW)异质结构内部的上层和下层。此外,基于集成水力发电装置设计了一种自供电脱盐监测系统。从离子溶液中收集的电能被重新用于去离子化,这是一种高效的能量转换和利用策略。

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