Self-healable stretchable printed electronic cryogels for in-vivo plant monitoring

被引:7
|
作者
Bihar, Eloise [1 ]
Strand, Elliot J. [2 ]
Crichton, Catherine A. [1 ]
Renny, Megan N. [2 ]
Bonter, Ignacy [3 ]
Tran, Tai [1 ]
Atreya, Madhur [1 ]
Gestos, Adrian [4 ]
Haseloff, Jim [3 ]
McLeod, Robert R. [2 ,5 ]
Whiting, Gregory L. [1 ,2 ]
机构
[1] Univ Colorado, Paul M Rady Dept Mech Engn, 1111 Engn Dr, Boulder, CO 80309 USA
[2] Univ Colorado, Mat Sci & Engn, 4001 Discovery Dr, Boulder, CO 80303 USA
[3] Univ Cambridge, Dept Plant Sci, Downing St, Cambridge CB2 3EA, England
[4] Univ Colorado, Mat Instrumentat & Multimodal Imaging Core Facil, 1111 Engn Dr Boulder, Boulder, CO 80309 USA
[5] Univ Colorado, Dept Elect Comp & Energy Engn, 1111 Engn Dr, Boulder, CO 80309 USA
基金
英国自然环境研究理事会; 美国国家科学基金会;
关键词
HYDROGEL;
D O I
10.1038/s41528-023-00280-1
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A key challenge in bioelectronics is to establish and improve the interface between electronic devices and living tissues, enabling a direct assessment of biological systems. Sensors integrated with plant tissue can provide valuable information about the plant itself as well as the surrounding environment, including air and soil quality. An obstacle in developing interfaces to plant tissue is mitigating the formation of fibrotic tissues, which can hinder continuous and accurate sensor operation over extended timeframes. Electronic systems that utilize suitable biocompatible materials alongside appropriate fabrication techniques to establish plant-electronic interfaces could provide for enhanced environmental understanding and ecosystem management capabilities. To meet these demands, this study introduces an approach for integrating printed electronic materials with biocompatible cryogels, resulting in stable implantable hydrogel-based bioelectronic devices capable of long-term operation within plant tissue. These inkjet-printed cryogels can be customized to provide various electronic functionalities, including electrodes and organic electrochemical transistors (OECTs), that exhibit high electrical conductivity for embedded conducting polymer traces (up to 350 S/cm), transconductance for OECTs in the mS range, a capacitance of up to 4.2 mF g(-1) in suitable structures, high stretchability (up to 330% strain), and self-healing properties. The biocompatible functionalized cryogel-based electrodes and transistors were successfully implanted in plant tissue, and ionic activity in tomato plant stems was collected for over two months with minimal scar tissue formation, making these cryogel-based printed electronic devices excellent candidates for continuous, in-situ monitoring of plant and environmental status and health.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Stretchable and self-healable electrical sensors with fingertip-like perception capability for surface texture discerning and biosignal monitoring
    Wu, Xianzhang
    Li, Zhangpeng
    Wang, Honggang
    Huang, Jingxia
    Wang, Jinqing
    Yang, Shengrong
    JOURNAL OF MATERIALS CHEMISTRY C, 2019, 7 (29) : 9008 - 9017
  • [42] Reversible electrical percolation in a stretchable and self-healable silver-gradient nanocomposite bilayer
    Park, Jinhong
    Seong, Duhwan
    Park, Yong Jun
    Park, Sang Hyeok
    Jung, Hyunjin
    Kim, Yewon
    Baac, Hyoung Won
    Shin, Mikyung
    Lee, Seunghyun
    Lee, Minbaek
    Son, Donghee
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [43] A fast self-healable and stretchable conductor based on hierarchical wrinkled structure for flexible electronics
    Zhao, Wenpeng
    Liu, Yaoyao
    Zhao, Can
    Shi, Xinyi
    Feng, Xianqi
    Xu, Jun
    Wang, Shouguo
    Wu, Yumin
    Yan, Shouke
    COMPOSITES SCIENCE AND TECHNOLOGY, 2021, 211
  • [44] Stretchable and Self-Healable Graphene-Polymer Conductive Composite for Wearable EMG Sensor
    Song, Jihyang
    Kim, Yewon
    Kang, Kyumin
    Lee, Sangkyu
    Shin, Mikyung
    Son, Donghee
    POLYMERS, 2022, 14 (18)
  • [45] Stretchable and Foldable Self-healable Conductive Silicon Elastomer with Multi-layered Structure
    Shan Yuxing
    Yang Jingxin
    Wang Jin
    Fu Yajun
    Hu Chengyao
    Yan Hui
    Huang Yawen
    CHINA SURFACE ENGINEERING, 2021, 34 (05) : 34 - 41
  • [46] Recent progress in stretchable and self-healable supercapacitors: active materials, mechanism, and device construction
    Tung, Yen-Yu
    Gull, Sanna
    Ni, Chung-Sheng
    Chiu, Wan-Ju
    Chen, Han-Yi
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2022, 32 (07)
  • [47] Versatile Copolymer for Stretchable and Self-healable Liquid-free Ionic Conductive Elastomers
    Qiu, Wenlian
    Zhang, Changgeng
    Zhang, Qi
    ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (37) : 42578 - 42585
  • [48] Stretchable and Foldable Self-healable Conductive Silicon Elastomer with Multi-layered Structure
    具有多层结构的可拉伸可折叠自修复有机硅导电弹性体
    Huang, Yawen (huangyawenswust@163.com), 1600, Chinese Mechanical Engineering Society (34): : 34 - 41
  • [49] A fast self-healable and stretchable conductor based on hierarchical wrinkled structure for flexible electronics
    Zhao, Wenpeng
    Liu, Yaoyao
    Zhao, Can
    Shi, Xinyi
    Feng, Xianqi
    Xu, Jun
    Wang, Shouguo
    Wu, Yumin
    Yan, Shouke
    Composites Science and Technology, 2021, 211
  • [50] Ultra-robust bonding between MXene nanosheets and stretchable, self-healable microfibers
    Shin, Yoo Bin
    Kim, Youngmin
    Kang, Chang Goo
    Oh, Jung-Min
    Kim, Jong-Woong
    ADVANCES IN NANO RESEARCH, 2021, 11 (05) : 453 - 466