Softening, Conformable, and Stretchable Conductors for Implantable Bioelectronics Interfaces

被引:0
|
作者
Rocha-Flores, Pedro E. [1 ]
Chitrakar, Chandani [2 ]
Rodriguez-Lopez, Ovidio [3 ]
Ren, Yao [4 ]
Joshi-Imre, Alexandra [5 ]
Parikh, Ankit R. [4 ]
Asan, Ahmet S. [6 ]
Mcintosh, James R. [6 ]
Garcia-Sandoval, Aldo [1 ]
Pancrazio, Joseph J. [1 ,5 ]
Ecker, Melanie [2 ]
Lu, Hongbing [4 ]
Carmel, Jason B. [6 ]
Voit, Walter E. [1 ,4 ,7 ]
机构
[1] Univ Texas Dallas, Dept Bioengn, Richardson, TX 75080 USA
[2] Univ North Texas, Dept Biomed Engn, Denton, TX 76203 USA
[3] Univ Texas Dallas, Dept Elect & Comp Engn, Richardson, TX 75080 USA
[4] Univ Texas Dallas, Dept Mech Engn, Richardson, TX 75080 USA
[5] Univ Texas Dallas, Off Res & Innovat, Richardson, TX 75080 USA
[6] COLUMBIA UNIV, DEPT NEUROL, NEW YORK, NY 10027 USA
[7] Univ Texas Dallas, Dept Mat Sci & Engn, Richardson, TX 75080 USA
来源
ADVANCED MATERIALS TECHNOLOGIES | 2025年 / 10卷 / 06期
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
biomedical implants; flexible electronics; micro-hole arrays; neural modulation; softening polymers; spinal cord stimulation; stretchable conductors; MICROELECTRODES; STIMULATION; POLYMER;
D O I
10.1002/admt.202401047
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Neural implantable devices serve as electronic interfaces facilitating communication between the body and external electronic systems. These bioelectronic systems ideally possess stable electrical conductivity, flexibility, and stretchability to accommodate dynamic movements within the body. However, achieving both high electrical conductivity and mechanical compatibility remains a challenge. Effective electrical conductors tend to be rigid and stiff, leading to a substantial mechanical mismatch with bodily tissues. On the other hand, highly stretchable polymers, while mechanically compatible, often suffer from limited compatibility with lithography techniques and reduced electrical stability. Therefore, there exists a pressing need to develop electromechanically stable neural interfaces that enable precise communication with biological tissues. In this study, a polymer that is softening, flexible, conformal, and compatible with lithography to microfabricate perforated thin-film architectures is utilized. These architectures offer stretchability and improved mechanical compatibility. Three distinct geometries are evaluated both mechanically and electrically under in vitro conditions that simulate physiological environments. Notably, the Peano structure demonstrates minimal changes in resistance, varying less than 1.5x even when subjected to approximate to 150% strain. Furthermore, devices exhibit a maximum mechanical elongation before fracture, reaching 220%. Finally, the application of multi-electrode spinal cord leads employing titanium nitride for neural stimulation in rat models is demonstrated.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Guest Editorial: Implantable bioelectronics
    Hanein, Yael
    Goding, Josef
    APL BIOENGINEERING, 2024, 8 (02):
  • [22] Semi-Implantable Bioelectronics
    Jiaru Fang
    Shuang Huang
    Fanmao Liu
    Gen He
    Xiangling Li
    Xinshuo Huang
    Hui-jiuan Chen
    Xi Xie
    Nano-Micro Letters, 2022, 14
  • [23] Fibrous wearable and implantable bioelectronics
    Sadri, Behnam
    Gao, Wei
    APPLIED PHYSICS REVIEWS, 2023, 10 (03)
  • [24] Ionic communication for implantable bioelectronics
    Zhao, Zifang
    Spyropoulos, George D.
    Cea, Claudia
    Gelinas, Jennifer N.
    Khodagholy, Dion
    SCIENCE ADVANCES, 2022, 8 (14)
  • [25] Stretchable bioelectronics-Current and future
    Joshipura, Ishan D.
    Finn, Mickey, III
    Tan, Siew Ting Melissa
    Dickey, Michael D.
    Lipomi, Darren J.
    MRS BULLETIN, 2017, 42 (12) : 960 - 967
  • [26] Super-Elastic Phenylalanine Dipeptide Crystal Fibers Enable Monolithic Stretchable Piezoelectrics for Wearable and Implantable Bioelectronics
    Ma, Juan
    Qian, Lili
    Jin, Fei
    Zheng, Weiying
    Li, Tong
    Wei, Zhidong
    Wang, Ting
    Feng, Zhang-Qi
    ADVANCED FIBER MATERIALS, 2025, 7 (01) : 338 - 350
  • [27] Natural biopolymers as proton conductors in bioelectronics
    Jia, Manping
    Kim, Jinhwan
    Nguyen, Tiffany
    Duong, Thi
    Rolandi, Marco
    BIOPOLYMERS, 2021, 112 (07)
  • [28] Elastomer-Free, Stretchable, and Conformable Silver Nanowire Conductors Enabled by Three-Dimensional Buckled Microstructures
    Weng, Chuanxin
    Dai, Zhaohe
    Wang, Guorui
    Liu, Luqi
    Zhang, Zhong
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (06) : 6541 - 6549
  • [29] Organic bioelectronics for neural interfaces
    Fang, Yan
    Li, Xinming
    Fang, Ying
    JOURNAL OF MATERIALS CHEMISTRY C, 2015, 3 (25) : 6424 - 6430
  • [30] Soft bioelectronics for cardiac interfaces
    Tang, Xin
    He, Yichun
    Liu, Jia
    BIOPHYSICS REVIEWS, 2022, 3 (01):