Water-responsive supercontractile polymer films for bioelectronic interfaces

被引:90
作者
Yi, Junqi [1 ,2 ]
Zou, Guijin [3 ]
Huang, Jianping [4 ]
Ren, Xueyang [5 ,6 ,7 ]
Tian, Qiong [4 ]
Yu, Qianhengyuan [4 ]
Wang, Ping [4 ]
Yuan, Yuehui [5 ]
Tang, Wenjie [5 ]
Wang, Changxian [1 ]
Liang, Linlin [1 ]
Cao, Zhengshuai [4 ]
Li, Yuanheng [4 ]
Yu, Mei [4 ]
Jiang, Ying [1 ]
Zhang, Feilong [1 ]
Yang, Xue [1 ]
Li, Wenlong [8 ]
Wang, Xiaoshi [1 ]
Luo, Yifei [8 ]
Loh, Xian Jun [8 ]
Li, Guanglin [4 ]
Hu, Benhui [5 ,9 ]
Liu, Zhiyuan [4 ]
Gao, Huajian [3 ,10 ]
Chen, Xiaodong [1 ,2 ]
机构
[1] Nanyang Technol Univ, Innovat Ctr Flexible Devices iFLEX, Max Planck NTU Joint Lab Artificial Senses, Sch Mat Sci & Engn, Singapore, Singapore
[2] Nanyang Technol Univ, Inst Digital Mol Analyt & Sci IDMxS, Singapore, Singapore
[3] ASTAR, Inst High Performance Comp, Singapore, Singapore
[4] Chinese Acad Sci CAS & Guangdong Hong Kong Macao J, Shenzhen Inst Adv Technol, CAS Key Lab Human Machine Intelligence Synergy Sys, Shenzhen, Peoples R China
[5] Nanjing Med Univ, Sch Biomed Engn & Informat, Nanjing, Peoples R China
[6] Southeast Univ, Sch Biol Sci & Med Engn, State Key Lab Bioelect, Nanjing, Peoples R China
[7] Southeast Univ, Sch Biol Sci & Med Engn, Jiangsu Key Lab Biomat & Devices, Nanjing, Peoples R China
[8] ASTAR, Inst Mat Res & Engn, Singapore, Singapore
[9] Nanjing Med Univ, Affiliated Eye Hosp, Nanjing, Peoples R China
[10] Nanyang Technol Univ, Coll Engn, Sch Mech & Aerosp Engn, Singapore, Singapore
基金
中国国家自然科学基金; 新加坡国家研究基金会;
关键词
MECHANICAL-PROPERTIES; ALGORITHMS; HUMIDITY;
D O I
10.1038/s41586-023-06732-y
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Connecting different electronic devices is usually straightforward because they have paired, standardized interfaces, in which the shapes and sizes match each other perfectly. Tissue-electronics interfaces, however, cannot be standardized, because tissues are soft1-3 and have arbitrary shapes and sizes4-6. Shape-adaptive wrapping and covering around irregularly sized and shaped objects have been achieved using heat-shrink films because they can contract largely and rapidly when heated7. However, these materials are unsuitable for biological applications because they are usually much harder than tissues and contract at temperatures higher than 90 degrees C (refs. 8,9). Therefore, it is challenging to prepare stimuli-responsive films with large and rapid contractions for which the stimuli and mechanical properties are compatible with vulnerable tissues and electronic integration processes. Here, inspired by spider silk10-12, we designed water-responsive supercontractile polymer films composed of poly(ethylene oxide) and poly(ethylene glycol)-alpha-cyclodextrin inclusion complex, which are initially dry, flexible and stable under ambient conditions, contract by more than 50% of their original length within seconds (about 30% per second) after wetting and become soft (about 100 kPa) and stretchable (around 600%) hydrogel thin films thereafter. This supercontraction is attributed to the aligned microporous hierarchical structures of the films, which also facilitate electronic integration. We used this film to fabricate shape-adaptive electrode arrays that simplify the implantation procedure through supercontraction and conformally wrap around nerves, muscles and hearts of different sizes when wetted for in vivo nerve stimulation and electrophysiological signal recording. This study demonstrates that this water-responsive material can play an important part in shaping the next-generation tissue-electronics interfaces as well as broadening the biomedical application of shape-adaptive materials. Water-responsive supercontractile polymer films composed of poly(ethylene oxide) and poly(ethylene glycol)-alpha-cyclodextrin inclusion complex contract by more than 50% of their original length within seconds after wetting and become soft and stretchable hydrogel thin films that can be used in bioelectronic interfaces.
引用
收藏
页码:295 / 302
页数:27
相关论文
共 69 条
  • [41] Technology Roadmap for Flexible Sensors
    Luo, Yifei
    Abidian, Mohammad Reza
    Ahn, Jong-Hyun
    Akinwande, Deji
    Andrews, Anne M.
    Antonietti, Markus
    Bao, Zhenan
    Berggren, Magnus
    Berkey, Christopher A.
    Bettinger, Christopher John
    Chen, Jun
    Chen, Peng
    Cheng, Wenlong
    Cheng, Xu
    Choi, Seon-Jin
    Chortos, Alex
    Dagdeviren, Canan
    Dauskardt, Reinhold H.
    Di, Chong-an
    Dickey, Michael D.
    Duan, Xiangfeng
    Facchetti, Antonio
    Fan, Zhiyong
    Fang, Yin
    Feng, Jianyou
    Feng, Xue
    Gao, Huajian
    Gao, Wei
    Gong, Xiwen
    Guo, Chuan Fei
    Guo, Xiaojun
    Hartel, Martin C.
    He, Zihan
    Ho, John S.
    Hu, Youfan
    Huang, Qiyao
    Huang, Yu
    Huo, Fengwei
    Hussain, Muhammad M.
    Javey, Ali
    Jeong, Unyong
    Jiang, Chen
    Jiang, Xingyu
    Kang, Jiheong
    Karnaushenko, Daniil
    Khademhosseini, Ali
    Kim, Dae-Hyeong
    Kim, Il-Doo
    Kireev, Dmitry
    Kong, Lingxuan
    [J]. ACS NANO, 2023, 17 (06) : 5211 - 5295
  • [42] Bioinspired high-power-density strong contractile hydrogel by programmable elastic recoil
    Ma, Yanfei
    Hua, Mutian
    Wu, Shuwang
    Du, Yingjie
    Pei, Xiaowei
    Zhu, Xinyuan
    Zhou, Feng
    He, Ximin
    [J]. SCIENCE ADVANCES, 2020, 6 (47):
  • [43] An Automated Force Field Topology Builder (ATB) and Repository: Version 1.0
    Malde, Alpeshkumar K.
    Zuo, Le
    Breeze, Matthew
    Stroet, Martin
    Poger, David
    Nair, Pramod C.
    Oostenbrink, Chris
    Mark, Alan E.
    [J]. JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2011, 7 (12) : 4026 - 4037
  • [44] Self-contracting oxidized starch/gelatin hydrogel for noninvasive wound closure and wound healing
    Mao, Qin
    Hoffmann, Oskar
    Yu, Kun
    Lu, Fei
    Lan, Guangqian
    Dai, Fangyin
    Shang, Songmin
    Xie, Ruiqi
    [J]. MATERIALS & DESIGN, 2020, 194
  • [45] Montgomery M, 2017, NAT MATER, V16, P1038, DOI [10.1038/NMAT4956, 10.1038/nmat4956]
  • [46] A critical review of interfaces with the peripheral nervous system for the control of neuroprostheses and hybrid bionic systems
    Navarro, X
    Krueger, TB
    Lago, N
    Micera, S
    Stieglitz, T
    Dario, P
    [J]. JOURNAL OF THE PERIPHERAL NERVOUS SYSTEM, 2005, 10 (03) : 229 - 258
  • [47] Catalytic Activation of Esterases by PEGylation for Polyester Synthesis
    Noro, Jennifer
    Castro, Tarsila G.
    Goncalves, Filipa
    Ribeiro, Artur
    Cavaco-Paulo, Artur
    Silva, Carla
    [J]. CHEMCATCHEM, 2019, 11 (10) : 2490 - 2499
  • [48] Mechanically Interlocked Hydrogel-Elastomer Hybrids for On-Skin Electronics
    Pan, Shaowu
    Zhang, Feilong
    Cai, Pingqiang
    Wang, Ming
    He, Ke
    Luo, Yifei
    Li, Zheng
    Chen, Geng
    Ji, Shaobo
    Liu, Zhihua
    Loh, Xian Jun
    Chen, Xiaodong
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (29)
  • [49] Ultralarge Contraction Directed by Light-Driven Unlocking of Prestored Strain Energy in Linear Liquid Crystal Polymer Fibers
    Pang, Xinlei
    Qin, Lang
    Xu, Bo
    Liu, Quan
    Yu, Yanlei
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (32)
  • [50] Parvizi J., 2010, High Yield Orthopaedics, P177