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Biomimetic anti-reflective triboelectric nanogenerator for concurrent harvesting of solar and raindrop energies

摩擦电效应 纳米发生器 材料科学 透射率 太阳能电池 能量转换效率 光电子学 光学 太阳能 电气工程 物理 复合材料 工程类 压电
作者
Donghyeon Yoo,Seung‐Chul Park,Seoulmin Lee,Jae‐Yoon Sim,Insang Song,Dongwhi Choi,Hyuneui Lim,Dong Sung Kim
出处
期刊:Nano Energy [Elsevier BV]
卷期号:57: 424-431 被引量:150
标识
DOI:10.1016/j.nanoen.2018.12.035
摘要

As a combination of solar cell and water-based triboelectric nanogenerator (TENG), new concept of a solar-cell-based hybrid energy harvester has been proposed. However, previous studies have not fully considered the degradation of optical characteristics due to water-based TENG and energy loss due to an ineffective electrical connection between solar cell and water-based TENG. The 1% degradation in light transmittance by applying the water-based TENG on its outermost part results in more than 1 mW/cm2 output power loss in a solar cell, which cannot be recovered by the instantaneous electrical energy output of water-based TENG. Herein, we report a moth's eye mimicking TENG (MM-TENG), which can play a role of complementary energy harvester to a conventional solar cell due to its superior specular transmittance (maximum of 91% for visible light). For the first time, we deeply analyze the optical effect of the MM-TENG on a solar cell by investigating solar-weighted transmittance (SWT). The 0.01% improved SWT in the MM-TENG increases the fill factor and power conversion efficiency of solar cell by 0.5% and 0.17%, respectively, compared with a conventional protective glass plate which is always applied in a solar panel. In addition to such prominent high transmittance, the self-cleaning property of the MM-TENG enables the long-term performance of the solar panel. And particularly, this paper reports a novel electric circuit for effective management in a hybrid energy harvester by intermittently transferring the stabilized electrical energy output of the MM-TENG. This work, which addresses issues for the practical utilization of the water-based TENG as a complementary energy harvester to solar cell, would move the water-based TENG one step closer to its practical utilization by resolving critical concerns.
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