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相对湿度控制下4H-SiC/Cu摩擦电纳米发电机输出电流方向的反转

Reversal in Output Current Direction of 4H-SiC/Cu Tribovoltaic Nanogenerator as Controlled by Relative Humidity.

作者信息

Xia Jinchao, Berbille Andy, Luo Xiongxin, Li Jiayu, Wang Ziming, Zhu Laipan, Wang Zhong Lin

机构信息

CAS Center for Excellence in Nanoscience, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing, 101400, China.

School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Small. 2024 Jan;20(2):e2305303. doi: 10.1002/smll.202305303. Epub 2023 Sep 1.

Abstract

Tribovoltaic nanogenerators (TVNG) represent a fantastic opportunity for developing low-frequency energy harvesting and self-powered sensing, by exploiting their real-time direct-current (DC) output. Here, a thorough study of the effect of relative humidity (RH) on a TVNG consisting of 4H-SiC (n-type) and metallic copper foil (SM-TVNG) is presented. The SM-TVNG shows a remarkable sensitivity to RH and an abnormal RH dependence. When RH increases from ambient humidity up to 80%, an increasing electrical output is observed. However, when RH rises from 80% to 98%, the signal output not only decreases, but its direction reverses as it crosses 90% RH. This behavior differs greatly from that of a Si-based TVNG, whose output constantly increases with RH. The behavior of the SM-TVNG might result from the competition between the built-in electric field induced by metal-semiconductor contact and a strong triboelectric electric field induced by solid-liquid triboelectrification under high RH. The authors also demonstrated that both SM-TVNG and Si-based TVNG can work effectively as-is even fully submerged in deionized water. This mechanism can affect other devices and be applied to design self-powered sensors working under high RH or underwater.

摘要

摩擦光伏纳米发电机(TVNG)通过利用其实时直流(DC)输出,为开发低频能量收集和自供电传感提供了绝佳机会。在此,本文对相对湿度(RH)对由4H-SiC(n型)和金属铜箔组成的TVNG(SM-TVNG)的影响进行了深入研究。SM-TVNG对RH表现出显著的敏感性和异常的RH依赖性。当RH从环境湿度增加到80%时,观察到电输出增加。然而,当RH从80%上升到98%时,信号输出不仅降低,而且在RH超过90%时其方向会反转。这种行为与基于硅的TVNG有很大不同,后者的输出随RH持续增加。SM-TVNG的这种行为可能源于金属-半导体接触诱导的内建电场与高RH下固-液摩擦起电诱导的强摩擦电场之间的竞争。作者还证明,SM-TVNG和基于硅的TVNG即使完全浸没在去离子水中也能按原样有效工作。这种机制可能会影响其他设备,并可应用于设计在高RH或水下工作的自供电传感器。

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