电磁辐射
能量转换
材料科学
电
能量收集
机械能
石墨烯
可再生能源
能量(信号处理)
光电子学
储能
纳米技术
电气工程
物理
工程类
光学
功率(物理)
热力学
量子力学
作者
Mao‐Sheng Cao,Xixi Wang,Wen‐Qiang Cao,Xiao‐Yong Fang,Bo Wen,Jie Yuan
出处
期刊:Small
[Wiley]
日期:2018-06-07
卷期号:14 (29)
被引量:828
标识
DOI:10.1002/smll.201800987
摘要
Abstract Electromagnetic energy radiation is becoming a “health‐killer” of living bodies, especially around industrial transformer substation and electricity pylon. Harvesting, converting, and storing waste energy for recycling are considered the ideal ways to control electromagnetic radiation. However, heat‐generation and temperature‐rising with performance degradation remain big problems. Herein, graphene‐silica xerogel is dissected hierarchically from functions to “genes,” thermally driven relaxation and charge transport, experimentally and theoretically, demonstrating a competitive synergy on energy conversion. A generic approach of “material genes sequencing” is proposed, tactfully transforming the negative effects of heat energy to superiority for switching self‐powered and self‐circulated electromagnetic devices, beneficial for waste energy harvesting, conversion, and storage. Graphene networks with “well‐sequencing genes” ( w = P c / P p > 0.2) can serve as nanogenerators, thermally promoting electromagnetic wave absorption by 250%, with broadened bandwidth covering the whole investigated frequency. This finding of nonionic energy conversion opens up an unexpected horizon for converting, storing, and reusing waste electromagnetic energy, providing the most promising way for governing electromagnetic pollution with self‐powered and self‐circulated electromagnetic devices.
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