材料科学
石墨烯
闪光灯(摄影)
氧化物
数码产品
可穿戴技术
可穿戴计算机
纳米技术
柔性电子器件
光电子学
还原(数学)
热的
电气工程
嵌入式系统
计算机科学
冶金
工程类
艺术
几何学
数学
物理
气象学
视觉艺术
作者
Youngjun Yun,Hyun Jin Kang,Cha Young Bae,Gihyun Bae,Hyun Jin Lee,Ki Hoon Kim,Yeong-Jun Jang,Tae Won Nam,Jung Woo Lee
标识
DOI:10.1002/aelm.202400984
摘要
Abstract Accurate and continuous temperature monitoring is essential for effective diagnosis and management of health conditions, particularly amid global challenges such as the COVID‐19 pandemic and the rising prevalence of age‐related diseases and cancer. However, conventional temperature‐measuring devices suffer from inherent limitations, including rigidity, bulkiness, and insufficient sensitivity, making them unsuitable for long‐term, real‐time applications. To overcome these challenges, a highly sensitive and flexible temperature sensor utilizing partially reduced graphene oxide (PrGO) as the sensing material is developed. Graphene oxide (GO), characterized by disrupted sp 2 bonds and oxygen‐rich functional groups that act as electron traps, undergoes controlled reduction to modulate its electrical and structural properties. In this study, by employing the flash‐thermal reduction technique, the reduction degree of the GO with systematic analyses on conductivity and material stability is precisely adjusted. The optimized flash‐thermal reduced graphene oxide based sensor exhibits exceptional flexibility, reversibility, high sensitivity (≈1.28% °C −1 ), excellent linearity (R 2 ≈ 0.999), long‐term stability, and a rapid response time (≈0.6 s), outperforming conventional metal‐based temperature sensors in sensitivity. These advancements highlight the transformative potential of flash‐thermal reduction for next‐generation wearable sensors, offering a lightweight, adaptable, and highly responsive platform for real‐time medical monitoring and healthcare applications.
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