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基于可生物降解棉纤维的压阻式可穿戴生物监测纺织品。

Biodegradable cotton fiber-based piezoresistive textiles for wearable biomonitoring.

机构信息

State Key Laboratory of Electronic Thin Films and Integrated Devices, School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, 610054, China.

Department of Bioengineering, University of California, Los Angeles, Los Angeles, CA, 90095, USA.

出版信息

Biosens Bioelectron. 2023 Feb 15;222:114999. doi: 10.1016/j.bios.2022.114999. Epub 2022 Dec 9.

Abstract

Electronic textiles are fundamentally changing the way we live. However, the inability to effectively recycle them is a considerable burden to the environment. In this study, we developed a cotton fiber-based piezoresistive textile (CF p-textile) for biomonitoring which is biocompatible, biodegradable, and environmentally friendly. These CF p-textiles were fabricated using a scalable dip-coating method to adhere MXene flakes to porous cotton cellulose fibers. The adhesion is made stronger by strong hydrogen bonding between MXene flakes and hierarchically porous cotton cellulose fibers. This cotton-fiber system provides a high sensitivity of 17.73 kPa in a wide pressure range (100 Pa-30 kPa), a 2 Pa subtle pressure detection limit, fast response/recovery time (80/40 ms), and good cycle stability (over 5, 000 cycles). With its compelling sensing performance, the CF p-textile can detect various human biomechanical activities, including pulsation, muscle movement, and swallowing, while still being comfortable to wear. Moreover, the cotton cellulose is decomposed into low-molecular weight cellulose or glucose as a result of the 1,4-glycosidic bond breakage when exposed to acid or during natural degradation, which allows the electronic textile to be biodegradable. This work offers an ecologically-benign, cost-effective and facile approach to fabricating high-performance wearable bioelectronics.

摘要

电子纺织品正在从根本上改变我们的生活方式。然而,它们无法有效地回收,这对环境造成了相当大的负担。在这项研究中,我们开发了一种基于棉纤维的压阻纺织品 (CF p-textile),用于生物监测,它具有生物相容性、可生物降解和环境友好性。这些 CF p-textiles 是使用可扩展的浸涂方法制造的,将 MXene 薄片附着在多孔棉纤维素纤维上。MXene 薄片和分层多孔棉纤维素纤维之间的氢键使附着更加牢固。这种棉纤维系统在宽压力范围内(100 Pa-30 kPa)提供了 17.73 kPa 的高灵敏度、2 Pa 的微小压力检测极限、快速的响应/恢复时间(80/40 ms)和良好的循环稳定性(超过 5000 次循环)。凭借其出色的传感性能,CF p-textile 可以检测各种人体生物力学活动,包括脉动、肌肉运动和吞咽,同时仍然穿着舒适。此外,当暴露在酸中或在自然降解过程中,棉纤维素的 1,4-糖苷键断裂会分解成低分子量纤维素或葡萄糖,这使得电子纺织品具有生物降解性。这项工作为制造高性能可穿戴生物电子设备提供了一种生态友好、经济高效且简便的方法。

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