电压
材料科学
电
发电机(电路理论)
电气工程
测距
灵活性(工程)
功率(物理)
发电
功率密度
汽车工程
电容器
气凝胶
电阻器
交流电
钥匙(锁)
发电机
计算机科学
交流电源
系列(地层学)
最大功率原理
导电体
电流(流体)
功率因数
独立电源系统
可穿戴计算机
作者
Lu Li,Ming Xia,Jinming Du,Yi Wu,Qin Cheng,Shanshan He,Qihao Guo,Pan Cheng,Ke Liu,Dong Wang
标识
DOI:10.1021/acsami.6c00950
摘要
To address the key challenges of low output, short duration, and difficult integration in moisture-enabled electricity generators (MEGs), we design a bilayer-structured aerogel-based moisture-enabled electricity generator (AMEG). By synergistically integrating a highly porous aerogel evaporation layer, a hygroscopic neutral salt (LiCl) combined with a hydrogel absorption layer, and an asymmetric active metal electrode, the proposed AMEG achieves a maximum open-circuit voltage ( V oc ) of 1.15 V, a short-circuit current ( I sc ) of 637.56 μA, and a power density ( P max ) of 24.36 μW/cm 2 . Notably, the AMEG maintains a stable I sc of 95.84 μA at −15 °C, demonstrating reliable operation under subzero conditions. Furthermore, the output voltage exhibits only minor variations across a bending angle ranging from 0° to 180°, showing excellent flexibility that facilitates large-scale integration. By connecting 30 AMEGs in series or 40 AMEGs in parallel, a voltage of 41.79 V or a current of 18.36 mA can be achieved, respectively, which is sufficient to directly power small commercial electronics. Moreover, three AMEG units connected in series generate enough power to run a small calculator and sustain a red LED for 72 h, and five units series-connected power a wearable watch for 144 h, demonstrating its potential as a wearable power source.
科研通智能强力驱动
Strongly Powered by AbleSci AI