材料科学
超级电容器
电压
功率密度
电容器
电势能
发电机(电路理论)
纳米技术
工作(物理)
离子键合
能量收集
离子电导率
光电子学
功率(物理)
发电
储能
电流密度
相对湿度
电流(流体)
可持续能源
离子
能量密度
电力
电荷密度
发电机
高压
电阻率和电导率
电气工程
电
电流
电场
能量(信号处理)
能量转换
电位
化学能
电导率
电力系统
工程物理
低压
作者
Ye Xing,Mingyuan Li,Xinpeng Zhang,Li Decheng,Kefu Chao,Xin Wang
摘要
ABSTRACT Moisture‐electric generators (MEGs) have emerged as a promising strategy for harvesting energy from omnipresent atmospheric moisture, which is still compromised by restricted electrical output and harsh working temperatures. Herein, a high‐output MEG based on high‐conductive anti‐freezing poly(acrylamide)/NaCl ionic hydrogel (PNIH) is developed to convert ambient chemical potential energy into electricity. The PNIH‐based MEG (PNIH‐MEG) can achieve excellent electrical outputs with a continuous output voltage of 1.6 V for 16 days, a current density of 1.2 mA/cm 2 , and a power density of 129 µW/cm 2 , which is attributed to synergistic effects of moisture‐induced ion migration, interfacial electrical double layer, interfacial reactions, and high conductivity of PNIH. Especially, the persistent voltage output (1.6 V) of the PNIH‐MEG is still maintained even under harsh working conditions of low temperature (−20°C) and low relative humidity (20% RH), which indicates a fascinating all‐weather operational capability. Furthermore, an integrated array composed of 72 MEGs in series or 6 MEGs in parallel generates a voltage of 120 V or a current of 5.0 mA, respectively, which can further charge commercial capacitors and directly power ten thermohydrometers. Consequently, this work demonstrates new insights for designing renewable, clean, and sustainable power generation with high‐output performance and environmental adaptability.
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