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智能热调节气凝胶驱动的被动等温柔性传感器

Passive Isothermal Flexible Sensor Enabled by Smart Thermal-Regulating Aerogels.

作者信息

Zhong Shenjie, Lu Bohan, Wang Duan-Chao, Arianpour Brian, Wang Shaolei, Han Haiyu, Yin Junyi, Bao Hong, Liu Yina, Wen Zhen, Zhou Yunlei

机构信息

Hangzhou Institute of Technology, Xidian University, Hangzhou, 311231, P. R. China.

Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, 215123, P. R. China.

出版信息

Adv Mater. 2025 Feb;37(8):e2415386. doi: 10.1002/adma.202415386. Epub 2025 Jan 5.

Abstract

Environmentally induced sensor temperature fluctuations can distort the outputs of a sensor, reducing their stability during long-term health monitoring. Here, a passive isothermal flexible sensor is proposed by using hierarchical cellulose aerogel (HCA) as the top tribonegative layer, which allows the sensor to adapt dynamic thermal environments through both radiative cooling and heat insulation. The radiative cooling effect can cool down the temperatures of a sensor in summer, while the hollow microfibers in HCA provide ultralow thermal conductivity to reduce internal heat loss in winter. The prepared passive isothermal sensor is capable of maintaining the rated working temperature over an extensive temperature range of 0-100 °C, demonstrating for gripping hot and cold objects. While monitoring human movements under direct sunlight, the temperature of a conventional sensor rose by 12.3 °C, whereas the sensor experienced an increase of only 0.3 °C. Therefore, this work presents a promising strategy for adapting to environments, enabling wearable electronics to function effectively in dynamic thermal conditions.

摘要

环境引起的传感器温度波动会使传感器的输出失真,降低其在长期健康监测中的稳定性。在此,通过使用分层纤维素气凝胶(HCA)作为顶部 tribonegative 层,提出了一种被动等温柔性传感器,这使得传感器能够通过辐射冷却和隔热来适应动态热环境。辐射冷却效应可以在夏季降低传感器的温度,而 HCA 中的中空微纤维提供超低的热导率,以减少冬季的内部热损失。制备的被动等温传感器能够在 0 - 100°C 的宽温度范围内保持额定工作温度,可用于抓取热的和冷的物体。在直射阳光下监测人体运动时,传统传感器的温度上升了 12.3°C,而该传感器仅上升了 0.3°C。因此,这项工作提出了一种适应环境的有前景的策略,使可穿戴电子产品能够在动态热条件下有效运行。

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