材料科学
膜
热电效应
热电发电机
电
离子键合
光电子学
热导率
热电冷却
热电材料
能量收集
发电
塞贝克系数
化学工程
热的
能量转换效率
纳米技术
相对湿度
异质结
复合材料
热传导
电压
薄膜
湿度
电阻率和电导率
离子电导率
蒙脱石
电导率
作者
Parijat Pratim Das,Raktim Gogoi,Sanjay Biswas,Tirthanav Das,Kalyan Raidongia
摘要
Direct conversion of body heat into electricity through thermoelectric (TE) devices is emerging as an attractive option to power wearable electronics. As semiconducting TE devices suffer from the trade-off between electronic and thermal conductivity and high operating temperature, ionic thermoelectric devices relying on atmospheric humidity perfectly fit this low-temperature operating condition. Here, atomically thin 2D channels of reconstructed clay membranes were applied to demonstrate the possibility of harvesting electricity from body heat through the ionic thermoelectric (i-TE) effect. Nanofluidic membranes prepared by reconstructing layers of montmorillonite clay (MMT) displayed outstanding i-TE characteristics. Thermal transport of intercalating cations through an interconnected network of 2D channels yielded a Seebeck coefficient (Si) of up to 13.63 ± 1.13 mV K-1. As the hydration of molecularly thin 2D channels relies on atmospheric water molecules, the ionic conductivity and Si of MMT increase with increasing humidity levels in the atmosphere. In contrast to polymer-based i-TE devices, clay membranes sustain exposure to high temperatures (∼200 °C, 5 min) and self-repair physical damages with the help of water droplets. The MMT membrane deposited on a PET film generated voltages of up to 63 mV (ΔT = 1.8 K) at 85% RH upon being pasted on human skin.
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