柔性纤维素纳米晶应变传感器的温度依赖性疲劳特性研究

Bingkang Huang, Zhenhua Li, Jian-chang Li
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引用次数: 1

摘要

柔性纤维素纳米晶体(CNC)应变传感器因其在人体运动检测、电子皮肤和软机器人等领域的巨大应用前景而备受关注。然而,由于温度的变化,弯曲对传感器机械性能的影响是其潜力的一个关键限制。本文系统地研究了CNC -氧化石墨烯-银纳米颗粒(NPs)应变传感器的温度依赖性弯曲疲劳,其中在弯曲超过10,000次后,随着温度从30°C降至- 30°C,传感器的灵敏度衰减到20%。有限元研究和理论计算表明,在不同温度下,银纳米颗粒与CNC之间的刚度不匹配可能导致界面裂纹。在室温下,界面裂纹处氢键网络的破坏和复合可以有效地增加能量耗散,阻碍具有重复弯曲应力的裂纹的发展。然而,在低温下,这种复合过程被CNC/Ag NPs界面裂纹中冰晶的形成所破坏。冰晶加速了裂纹的扩展,最终使CNC传感器劣化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Temperature‐Dependent Fatigue Characterization of Flexible Cellulose Nanocrystal Strain Sensor
The flexible cellulose nanocrystal (CNC) strain sensors have gained attention owing to their great promising in human motion detection, electronic skin, and soft robotics. However, the effect of bending on the mechanical performance of the sensor altered by the variation of temperature is a key limitation to their potential. Here, the temperature‐dependent bending fatigue of the CNC‐graphene oxide‐Ag nanoparticles (NPs) strain sensor is systematically investigated, in which the sensitivity of the sensor is attenuated to 20% with the decreasing temperature from 30 to −30 °C after bending over 10 000 times. The finite element studies and theoretical calculations indicate that the interfacial crack can be caused by the stiffness mismatch between the Ag NPs and CNC at different temperatures. Under room temperature, the destruction and recombination of the hydrogen bonds network at the interfacial crack can effectively increase the dissipation of energy and hinder the development of cracks with repetitive bending stress. However, under low temperature, such recombination processes are broken by the formation of ice crystals in the CNC/Ag NPs interfacial cracks. The ice crystals accelerate the crack propagation and eventually make the CNC sensor suffer from deterioration.
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