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大分子弛豫导向的可拉伸纤维毡中的 3D 纳米纤维结构用于可穿戴多功能传感器。

Macromolecule Relaxation Directed 3D Nanofiber Architecture in Stretchable Fibrous Mats for Wearable Multifunctional Sensors.

机构信息

College of Polymer Science and Engineering, Sichuan University, State Key Laboratory of Polymer Materials Engineering, Chengdu, 610065 Sichuan, PR China.

出版信息

ACS Appl Mater Interfaces. 2022 Apr 6;14(13):15678-15686. doi: 10.1021/acsami.2c02090. Epub 2022 Mar 23.

Abstract

Elastomer fiber mat sensors, which are capable of perceiving mechanical stimuli, temperature, and vapor of chemicals, are highly desirable for designing wearable electronics and human-robot interfacing devices due to good wearability, skin affinity, and durability, and so on. However, it is still challenging to fabricate multiresponsive flexible wearable sensors with three-dimensional (3D) architecture using simple material and structure design. Herein, we report an all-in-one multiresponsive thermoplastic polyurethane (TPU) nanofiber mat sensors composed of crimped elastomer fibers with deposited platinum nanoparticles (PtNPs) on the fiber surface. The 1D TPU nanofibers could be transferred to nanofibers with different 3D nanofiber architectures by controllable macromolecular chain relaxation of aligned elastomer polymers upon poor solvent annealing. The conductive networks of PtNPs on wavy TPU fibers enable the sensor susceptible to multiple stimuli like strain/pressure, humidity, and organic vapors. Besides, the 3D nanofiber architectures allow the strain sensor to detect wider tensile strain and pressure with higher sensitivity due to delicate fiber morphology and structure control. Therefore, this work provides new insights into the fabrication of multifunctional flexible sensors with 3D architecture in an easy way, advancing the establishment of a multiple signal monitoring platform for the health care and human-machine interfacing.

摘要

弹性体纤维毡传感器能够感知机械刺激、温度和化学蒸气,由于其良好的可穿戴性、皮肤亲和性和耐用性等优点,非常适合设计可穿戴电子设备和人机界面设备。然而,使用简单的材料和结构设计来制造具有三维 (3D) 架构的多响应性柔性可穿戴传感器仍然具有挑战性。在这里,我们报告了一种由卷曲弹性体纤维组成的一体式多响应热塑性聚氨酯 (TPU) 纳米纤维毡传感器,纤维表面沉积了铂纳米粒子 (PtNPs)。通过在不良溶剂退火时对取向弹性体聚合物的可控大分子链松弛,一维 TPU 纳米纤维可以转化为具有不同 3D 纳米纤维结构的纳米纤维。在波纹 TPU 纤维上的 PtNPs 导电网络使传感器能够对多种刺激(如应变/压力、湿度和有机蒸气)敏感。此外,由于纤维形态和结构控制精细,3D 纳米纤维结构允许应变传感器检测更宽的拉伸应变和压力,并具有更高的灵敏度。因此,这项工作为以简单的方式制造具有 3D 架构的多功能柔性传感器提供了新的见解,推进了用于医疗保健和人机界面的多信号监测平台的建立。

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