Self-Powered Integrated Tactile Sensing System Based on Ultrastretchable, Self-Healing and 3D Printable Ionic Conductive Hydrogel

被引:30
作者
Mogli, Giorgio [1 ]
Reina, Marco [1 ]
Chiappone, Annalisa [2 ]
Lamberti, Andrea [1 ,3 ]
Pirri, Candido Fabrizio [1 ,3 ]
Roppolo, Ignazio [1 ,3 ]
Stassi, Stefano [1 ]
机构
[1] Politecn Torino, Dept Appl Sci & Technol, Cso Duca degli Abruzzi 24, I-10129 Turin, Italy
[2] Univ Cagliari, Dipartimento Sci Chim & Geol, Cittadella Univ Blocco D,SS 554 Bivio Sestu, I-09042 Monserrato, CA, Italy
[3] Ist Italiano Tecnol, Ctr Sustainable Future Technol Polito, Via Livorno 60, I-10144 Turin, Italy
基金
欧洲研究理事会;
关键词
3D printing; hydrogels; self-healing; self-powered sensors; wearable sensors; STRAIN SENSOR; SUPERCAPACITOR;
D O I
10.1002/adfm.202307133
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Self-healing ionic conductive hydrogels have shown significant potential in applications like wearable electronics, soft robotics, and prosthetics because of their high strain sensitivity and mechanical and electrical recovery after damage. Despite the enormous interest in these materials, conventional fabrication techniques hamper their use in advanced devices since only limited geometries can be obtained, preventing proper conformability to the complexity of human or robotic bodies. Here, a photocurable hydrogel with excellent sensitivity to mechanical deformations based on a semi-interpenetrating polymeric network is reported, which holds remarkable mechanical properties (ultimate tensile strain of 550%) and spontaneous self-healing capabilities, with complete recovery of its strain sensitivity after damages. Furthermore, the developed material can be processed by digital light processing 3D printing technology to fabricate complex-shaped strain sensors, increasing mechanical stress sensitivity with respect to simple sensor geometries, reaching an exceptional pressure detection limit below 1 Pa. Additionally, the hydrogel is used as an electrolyte in the fabrication of a laser-induced graphene-based supercapacitor, then incorporated into a 3D-printed sensor to create a self-powered, fully integrated device. These findings demonstrate that by using 3D printing, it is possible to produce multifunctional, self-powered sensors, appropriately shaped depending on the various applications, without the use of bulky batteries. A photocurable hydrogel with excellent sensitivity to mechanical deformation and spontaneous self-healing capabilities is presented. Complex-shaped wearable sensors are fabricated by 3D printing technology, increasing sensitivity with respect to simple sensor geometries. The hydrogel is also used as an electrolyte in a supercapacitor and implemented to create a self-powered, fully integrated strain sensor system.image
引用
收藏
页数:12
相关论文
共 77 条
  • [1] Arterial blood pressure measurement and pulse wave analysis-their role in enhancing cardiovascular assessment
    Avolio, Alberto P.
    Butlin, Mark
    Walsh, Andrew
    [J]. PHYSIOLOGICAL MEASUREMENT, 2010, 31 (01) : R1 - R47
  • [2] 3D printing of fully cellulose-based hydrogels by digital light processing
    Cafiso, Diana
    Septevani, Athanasia Amanda
    Noe, Camilla
    Schiller, Tara
    Pirri, Candido Fabrizio
    Roppolo, Ignazio
    Chiappone, Annalisa
    [J]. SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2022, 32
  • [3] Recent progress in multifunctional hydrogel-based supercapacitors
    Cao, Xuguang
    Jiang, Chengming
    Sun, Nan
    Tan, Dongchen
    Li, Qikun
    Bi, Sheng
    Song, Jinhui
    [J]. JOURNAL OF SCIENCE-ADVANCED MATERIALS AND DEVICES, 2021, 6 (03): : 338 - 350
  • [4] Self-healing electronic skins for aquatic environments
    Cao, Yue
    Tan, Yu Jun
    Li, Si
    Lee, Wang Wei
    Guo, Hongchen
    Cai, Yongqing
    Wang, Chao
    Tee, Benjamin C. -K.
    [J]. NATURE ELECTRONICS, 2019, 2 (02) : 75 - 82
  • [5] 3D-printed self-healing hydrogels via Digital Light Processing
    Caprioli, Matteo
    Roppolo, Ignazio
    Chiappone, Annalisa
    Larush, Liraz
    Pirri, Candido Fabrizio
    Magdassi, Shlomo
    [J]. NATURE COMMUNICATIONS, 2021, 12 (01)
  • [6] High-performance stretchable conductive nanocomposites: materials, processes, and device applications
    Choi, Suji
    Han, Sang Ihn
    Kim, Dokyoon
    Hyeon, Taeghwan
    Kim, Dae-Hyeong
    [J]. CHEMICAL SOCIETY REVIEWS, 2019, 48 (06) : 1566 - 1595
  • [7] How to Design a Self-Healing Polymer: General Concepts of Dynamic Covalent Bonds and Their Application for Intrinsic Healable Materials
    Dahlke, Jan
    Zechel, Stefan
    Hager, Martin D.
    Schubert, Ulrich S.
    [J]. ADVANCED MATERIALS INTERFACES, 2018, 5 (17):
  • [8] Three-Dimensional Printed Hydrogels with High Elasticity, High Toughness, and Ionic Conductivity for Multifunctional Applications
    Deng, Ziwei
    Qian, Tianbao
    Hang, Fei
    [J]. ACS BIOMATERIALS SCIENCE & ENGINEERING, 2020, 6 (12) : 7061 - 7070
  • [9] Ultrasensitive, Low-Voltage Operational, and Asymmetric Ionic Sensing Hydrogel for Multipurpose Applications
    Ding, Hanyuan
    Xin, Zeqin
    Yang, Yueyang
    Luo, Yufeng
    Xia, Kailun
    Wang, Bolun
    Sun, Yufei
    Wang, Jiaping
    Zhang, Yingying
    Wu, Hui
    Fan, Shoushan
    Zhang, Lei
    Liu, Kai
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (12)
  • [10] 3D printing of electrically conductive hydrogels for tissue engineering and biosensors - A review
    Distler, Thomas
    Boccaccini, Aldo R.
    [J]. ACTA BIOMATERIALIA, 2020, 101 (101) : 1 - 13