[2] PARK H,JEONG Y R,YUN J,et al. Stretchable array of highly sensitive pressure sensors consisting of polyaniline nanofibers and Au-coated polydimethyl-siloxane micropillars [J]. ACS Nano,2015,9(10):9974-9985.
[3] LIU Y J, CAO W T, MA M G, et al. Ultrasensitive wearable soft strain sensors of conductive,self-healing,and elastic hydrogels with synergistic "soft and hard" hybrid networks [J]. ACS Applied Materials & Interfaces,2017,9(30):25559-25570.
[4] ZHANG Y, REN E H, LI A, et al. A porous self-healing hydrogel with an island-bridge structure for strain and pressure sensors [J]. Journal of Materials Chemistry B,2021,9(3):719-730.
[5] ZHANG D,REN B P,ZHANG Y X,et al. From design to applications of stimuli-responsive hydrogel strain sensors [J]. Journal of Materials Chemistry B,2020,8(16):3171-3191.
[6] QU X Y, WANG S Y, ZHAO Y,et al. Skin-inspired highly stretchable, tough and adhesive hydrogels for tissue-attached sensor [J]. Chemical Engineering Journal,2021,425:131523:1-9.
[7] CHEN Y J,QIN H L,MENSAHA A,et al. Biomimetic nanocomposite hydrogel networks for robust wet adhesion to tissues [J]. Composites Part B:Engineering,2021,222:109071:1-11.
[8] 廖美红. 功能性水凝胶的性能调控及其在柔性传感器的应用研究[D].北京:北京化工大学,2020.
[9] 高子健. 自愈合水凝胶的制备及其在柔性应变传感方向的应用[D].长春:长春工业大学,2020.
[10] WEI D L, WANG H N, ZHU J Q, et al. Highly stretchable,fast self-healing,responsive conductive hydrogels for supercapacitor electrode and motion sensor [J]. Macromolecular Materials and Engineering,2020,305(5):2000018:1-12.
[11] PAN X F,WANG Q H,HE P,et al. Mussel-inspired nanocomposite hydrogel-based electrodes with reusable and injectable properties for human electrophysiological signals detection [J]. ACS Sustainable Chemistry & Engineering,2019,7(8):7918-7925.
[12] ZHONG H, LI Z Y, ZHAO T Y, et al. Surface modification of nanofibers by physical adsorption of fiber-homologous amphiphilic copolymers and nanofiber-reinforced hydrogels with excellent tissue adhesion [J]. ACS Biomaterials Science & Engineering,2021,7(10):4828-4837.
[13] JING X,LI H,MI H Y,et al. Highly transparent,stretchable,and rapid self-healing polyvinyl alcohol/cellulose nanofibril hydrogel sensors for sensitive pressure sensing and human motion detection [J]. Sensors and Actuators B:Chemical,2019,295:159-167.
[14] ZHAO L,REN Z J,LIU X,et al. A multifunctional,self-healing,self-adhesive,and conductive sodium alginate/poly(vinyl alcohol) composite hydrogel as a flexible strain sensor [J]. ACS Applied Materials & Interfaces,2021,13(9):11344-11355.
[15] PAN X F, WANG Q H,HE P,et al. A bionic tactile plastic hydrogel-based electronic skin constructed by a nerve-like nanonetwork combining stretchable,compliant,and self-healing properties [J]. Chemical Engineering Journal,2020,379:122271:1-9.
[16] HE P, WU J Y, PAN X F, et al. Anti-freezing and moisturizing conductive hydrogels for strain sensing and moist-electric generation applications [J]. Journal of Materials Chemistry A,2020,8(6):3109-3118.
[17] 李亮,陈旭,艾建连. 偶氮染料掺杂聚吡咯纳米/微米结构材料的制备[J].武汉工程大学学报,2013,35(4):55-60.
[18] REN K, CHENG Y, HUANG C, et al. Self-healing conductive hydrogels based on alginate,gelatin and polypyrrole serve as a repairable circuit and a mechanical sensor [J]. Journal of Materials Chemistry B,2019,7(37):5704-5712.
[19] ZHANG H, REN P G, YANG F,et al. Biomimetic epidermal sensors assembled from polydopamine-modified reduced graphene oxide/polyvinyl alcohol hydrogels for the real-time monitoring of human motions [J]. Journal of Materials Chemistry B,2020,8(46):10549-10558.
[20] JING X,MI H Y,PENG X F,et al. Biocompatible,self-healing, highly stretchable polyacrylic acid/reduced graphene oxide nanocomposite hydrogel sensors via mussel-inspired chemistry [J]. Carbon,2018,136:63-72.