Hydrovoltaic Power Generation Depend on Wettability at the Liquid–Solid Interface: Mechanisms, Materials, and Applications With Various Resource

IF 22.5
Yejin Lee, Minwoo Lee, Junwoo Lee, Ho Won Jang, Ji-Soo Jang
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Abstract

With the global increase in energy consumption, there is a growing demand for green energy production, which has prompted the development of novel renewable energy sources. Recently, significant momentum has been observed in research on new energy harvesting methods suitable for small devices. In this context, hydrovoltaic power generation, utilizing water due to its ubiquitous presence and easy availability, has emerged as a promising technology. Hydrovoltaic power generation operates by converting the potential energy of water into electrical energy through the interaction between water and materials capable of inducing an electrical potential gradient. The control of material surface wettability, which determines the interaction with water, plays a crucial role in enhancing the electrical output and long-term stability of power generation systems. This review categorizes the mechanisms of hydrovoltaic power generation into flow and diffusion mechanisms, discussing respective case studies based on hydrophobic and hydrophilic substrates. Additionally, representative materials used in hydrovoltaic power generation are discussed and the potential to expand this technology across various fields based on the diverse resources of water is demonstrated. The review concludes with future perspectives, highlighting the applications of hydrovoltaic power generation across multiple domains and outlining directions for future research and development.

Abstract Image

水力发电依赖于液体-固体界面的润湿性:机制、材料和各种资源的应用
随着全球能源消费的增加,人们对绿色能源生产的需求日益增长,这促使了新型可再生能源的发展。近年来,适用于小型设备的新型能量收集方法的研究取得了显著的进展。在这种情况下,利用水的水力发电,由于其无处不在和容易获得,已经成为一种有前途的技术。水力发电是通过水与能够产生电势梯度的物质相互作用,将水的势能转化为电能来发电的。材料表面润湿性的控制决定了材料与水的相互作用,对提高发电系统的输出功率和长期稳定性起着至关重要的作用。本文将光伏发电机制分为流动机制和扩散机制,并分别讨论了基于疏水和亲水基质的案例研究。此外,还讨论了用于水力发电的代表性材料,并展示了基于不同水资源将该技术扩展到各个领域的潜力。总结了未来的展望,强调了水电发电在多个领域的应用,并概述了未来的研究和发展方向。
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CiteScore
17.20
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