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具有全范围人体运动监测和自主自修复能力的分层结构碳纳米纤维基类皮肤应变传感器。

Hierarchically Structured Carbon Nanofiber-Enabled Skin-Like Strain Sensors with Full-Range Human Motion Monitoring and Autonomous Self-Healing Capability.

机构信息

State Key Laboratory of Separation Membranes and Membrane Processes/National Center for International Joint Research on Separation Membranes, School of Textile Science and Engineering, Tiangong University, Tianjin300387, China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 8;15(5):7380-7391. doi: 10.1021/acsami.2c20104. Epub 2023 Jan 26.

Abstract

Flexible strain sensors that mimic the properties of human skin have recently attracted tremendous attention. However, integrating multiple functions of skin into one strain sensor, e.g., stretchability, full-range motion response, and self-healing capability, is still an enormous challenge. Herein, a skin-like strain sensor was presented by the construction of hierarchically structured carbon nanofibers (CNFs), followed by encapsulation of elastic self-healing polyurethane (PU). The hierarchical sensing structure was composed of diversified CNFs with orientations from highly aligned to randomly oriented, and their different fracture mechanisms enabled the resultant strain sensor to successfully integrate key sensing properties including high sensitivity (gauge factor of 90), wide sensing range (∼80% strain), and fast response (52 ms). These properties, combined with high stretchability (870%) and excellent stability (>2000 cycles), allowed the sensor to precisely detect full-range human motions from large joint motions to subtle physiological signals. Moreover, the strain sensor had spontaneous self-healing capability at room temperature with high healing efficiencies of 97.7%, while the healing process could substantially be accelerated by the natural sunlight (24 h → 0.5 h). The healed sensor possessed comparable stretchability, sensing performance, and accurate monitoring ability of subtle body signals with the original sensor. The biomimetic self-healing functionality along with skin-like sensing properties makes it attractive for next-generation wearable electronics.

摘要

最近,模仿人类皮肤特性的柔性应变传感器引起了极大的关注。然而,将皮肤的多种功能集成到一个应变传感器中,例如可拉伸性、全范围运动响应和自修复能力,仍然是一个巨大的挑战。在此,通过构建分层结构的碳纳米纤维(CNF),随后封装弹性自修复聚氨酯(PU),制备了一种类皮肤应变传感器。分层传感结构由具有从高度取向到无规取向的不同取向的多样化 CNF 组成,其不同的断裂机制使所得应变传感器成功集成了包括高灵敏度(90 的应变系数)、宽传感范围(~80%应变)和快速响应(52ms)在内的关键传感特性。这些特性,再加上高可拉伸性(870%)和出色的稳定性(>2000 次循环),使传感器能够精确地检测从大关节运动到细微生理信号的全范围人体运动。此外,应变传感器在室温下具有自发的自修复能力,其修复效率高达 97.7%,而自然阳光(24h→0.5h)可显著加速修复过程。修复后的传感器具有可比拟的拉伸性、传感性能和对细微身体信号的准确监测能力,与原始传感器相当。这种仿生自修复功能以及类皮肤的传感特性使其成为下一代可穿戴电子设备的理想选择。

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