摩擦电效应
材料科学
弹性体
纳米技术
离子键合
离子液体
复合材料
离子
生物化学
化学
物理
量子力学
催化作用
作者
Hee Jae Hwang,Joo Sung Kim,Seungin Oh,Jeonghoon Han,Hanbin Choi,Youngsuk Nam,Jin‐Gyun Kim,Do Hwan Kim,Kwun‐Bum Chung,Dukhyun Choi
标识
DOI:10.1002/adfm.202504081
摘要
Abstract Self‐powered flexible thermal‐management systems have garnered interests in wearable electronic devices and AI semiconductors. However, their efficiency and reliability remain limited in practical applications. In this study, an ionic temperature‐sensing triboelectric nanogenerator (iTS‐TENG) is proposed with an ionic elastomer containing thermoplastic polyurethane (TPU) and ionic liquids (ILs). The TPU matrix undergoes deformation of microphase separation by thermal stimulation near the glass transition temperature. Furthermore, ILs facilitate the formation of electrical double layers as charge carriers and enhance the thermal sensitivity as heat carriers under mechanical and thermal stimuli. Thus, iTS‐TENG demonstrates enhanced outputs (734 V) and high thermal sensitivity (3.87 V/°C) from room temperature to 70 °C, with fast response time and reproducibility (more than 20 cycles). Finally, real‐time and self‐powered iTS‐TENG is demonstrated, showing that the sensed temperature is comparable to a commercial temperature sensor. These results indicate that iTS‐TENG is suitable for thermal‐management applications in self‐powered wearable electronic systems.
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