通过离子交联和氢键作用提高 P(AM--AA)/壳聚糖季铵盐复合水凝胶的力学强度、导电性和抑菌性。

High Strength, Conductivity, and Bacteriostasis of the P(AM--AA)/Chitosan Quaternary Ammonium Salt Composite Hydrogel through Ionic Crosslinking and Hydrogen Bonding.

机构信息

School of Chemical Engineering, Changchun University of Technology, Changchun 130012, China.

Engineering Research Center of Synthetic Resin and Special Fiber, Ministry of Education, Changchun University of Technology, Changchun 130012, China.

出版信息

Langmuir. 2023 Jun 27;39(25):8698-8709. doi: 10.1021/acs.langmuir.3c00646. Epub 2023 Jun 14.

Abstract

Traditional hydrogels with a single-crosslinked network structure suffer from poor stretchability, low sensitivity, and easy contamination, which seriously affect their practical application in the strain sensor field. To overcome these shortcomings, herein, a multiphysical crosslinking strategy (ionic crosslinking and hydrogen bonding) was designed to prepare a hydrogel strain sensor based on chitosan quaternary ammonium salt (HACC)-modified P(AM--AA) (acrylamide--acrylic acid copolymer) hydrogels. The ionic crosslinking for the double-network P(AM--AA)/HACC hydrogels was achieved by an immersion method with Fe as crosslinking sites, which crosslinked with the amino group (-NH) on HACC and the carboxyl group (-COOH) on P(AM--AA) and enabled the hydrogels to recover and reorganize rapidly, resulting in a hydrogel-based strain sensor with excellent tensile stress (3 MPa), elongation (1390%), elastic modulus (0.42 MPa), and toughness (25 MJ/m). In addition, the prepared hydrogel exhibited high electrical conductivity (21.6 mS/cm) and sensitivity (GF = 5.02 at 0-20% strain, GF = 6.84 at 20-100% strain, and GF = 10.27 at 100-480% strain). Furthermore, the introduction of HACC endowed the hydrogel with excellent antibacterial properties (up to 99.5%) and excellent antibacterial activity against bacteria of three forms, bacilli, cocci, and spores. The flexible, conductive, and antibacterial hydrogel can be applied as a strain sensor for real-time detection of human motions such as joint movement, speech, and respiration, which exhibits a promising application prospect in wearable devices, soft robotic systems, and other fields.

摘要

传统的单交联网络结构水凝胶存在拉伸性差、灵敏度低和易污染等问题,严重影响了其在应变传感器领域的实际应用。为了克服这些缺点,本文设计了一种多物理交联策略(离子交联和氢键),以制备基于壳聚糖季铵盐(HACC)改性 P(AM--AA)(丙烯酰胺-丙烯酸共聚物)水凝胶的水凝胶应变传感器。通过浸泡法,Fe 作为交联位点,实现了双网络 P(AM--AA)/HACC 水凝胶的离子交联,与 HACC 上的氨基(-NH)和 P(AM--AA)上的羧基(-COOH)交联,使水凝胶能够快速恢复和重新排列,从而得到一种基于水凝胶的应变传感器,具有优异的拉伸应力(3 MPa)、伸长率(1390%)、弹性模量(0.42 MPa)和韧性(25 MJ/m)。此外,所制备的水凝胶具有较高的电导率(21.6 mS/cm)和灵敏度(在 0-20%应变时 GF = 5.02,在 20-100%应变时 GF = 6.84,在 100-480%应变时 GF = 10.27)。此外,HACC 的引入赋予了水凝胶优异的抗菌性能(高达 99.5%)和对三种形式的细菌(杆菌、球菌和芽孢)的优异抗菌活性。这种灵活、导电和抗菌的水凝胶可用作应变传感器,用于实时检测人体运动,如关节运动、言语和呼吸,在可穿戴设备、软机器人系统和其他领域具有广阔的应用前景。

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