Dipartimento di Chimica Industriale "Toso Montanari", Università di Bologna, Viale del Risorgimento 4, 40136 Bologna, Italy.
Dipartimento di Fisica e Astronomia, Università di Bologna, Viale Berti Pichat 6/2, 40127 Bologna, Italy.
ACS Sens. 2021 Jun 25;6(6):2366-2377. doi: 10.1021/acssensors.1c00552. Epub 2021 Jun 2.
The rapid evolution of wearable technologies is giving rise to a strong push for textile chemical sensors design targeting the real-time collection of vital parameters for improved healthcare. Among the most promising applications, monitoring of nonhealing wounds is a scarcely explored medical field that still lacks quantitative tools for the management of the healing process. In this work, a smart bandage is developed for the real-time monitoring of wound pH, which has been reported to correlate with the healing stages, thus potentially giving direct access to the wound status without disturbing the wound bed. The fully textile device is realized by integrating a sensing layer, including the two-terminal pH sensor made of a semiconducting polymer and iridium oxide particles, and an absorbent layer ensuring the delivery of a continuous wound exudate flow across the sensor area. The two-terminal sensor exhibits a reversible response with a sensitivity of (59 ± 4) μA pH in the medically relevant pH range for wound monitoring (pH 6-9), and its performance is not substantially affected either by the presence of the most common chemical interferents or by temperature gradients from 22 to 40 °C. Thanks to the robust sensing mechanism based on potentiometric transduction and the simple device geometry, the fully assembled smart bandage was successfully validated in flow analysis using synthetic wound exudate.
可穿戴技术的快速发展推动了纺织化学传感器设计的发展,旨在实时采集重要参数,以改善医疗保健。在最有前途的应用中,监测难以愈合的伤口是一个尚未得到充分探索的医学领域,仍然缺乏用于管理愈合过程的定量工具。在这项工作中,开发了一种智能绷带,用于实时监测伤口 pH 值,据报道,伤口 pH 值与愈合阶段相关,因此无需干扰伤口床即可直接了解伤口状况。通过集成传感层来实现全纺织设备,包括由半导体聚合物和氧化铱颗粒制成的两端 pH 传感器,以及吸收层,以确保连续的伤口渗出物流经传感器区域。两端传感器在医学相关的伤口监测 pH 范围(6-9)内具有可逆响应,灵敏度为(59±4)μA pH,其性能不受最常见的化学干扰物的存在或 22 至 40°C 的温度梯度的显著影响。由于基于电位转换的稳健传感机制和简单的器件几何形状,完整组装的智能绷带在使用合成伤口渗出物的流动分析中成功得到验证。