Literature DB >> 30586292

Wearable and Implantable Soft Bioelectronics Using Two-Dimensional Materials.

Changsoon Choi1,2, Youngsik Lee1,2, Kyoung Won Cho1,3, Ja Hoon Koo1,3, Dae-Hyeong Kim1,2,3.   

Abstract

Soft bioelectronics intended for application to wearable and implantable biomedical devices have attracted great attention from material scientists, device engineers, and clinicians because of their extremely soft mechanical properties that match with a variety of human organs and tissues, including the brain, heart, skin, eye, muscles, and neurons, as well as their wide diversity in device designs and biomedical functions that can be finely tuned for each specific case of applications. These unique features of the soft bioelectronics have allowed minimal mechanical and biological damage to organs and tissues integrated with bioelectronic devices and reduced side effects including inflammation, skin irritation, and immune responses even after long-term biointegration. These favorable properties for biointegration have enabled long-term monitoring of key biomedical indicators with high signal-to-noise ratio, reliable diagnosis of the patient's health status, and in situ feedback therapy with high treatment efficacy optimized for the requirements of each specific disease model. These advantageous device functions and performances could be maximized by adopting novel high-quality soft nanomaterials, particularly ultrathin two-dimensional (2D) materials, for soft bioelectronics. Two-dimensional materials are emerging material candidates for the channels and electrodes in electronic devices (semiconductors and conductors, respectively). They can also be applied to various biosensors and therapeutic actuators in soft bioelectronics. The ultrathin vertically layered nanostructure, whose layer number can be controlled in the synthesis step, and the horizontally continuous planar molecular structure, which can be found over a large area, have conferred unique mechanical, electrical, and optical properties upon the 2D materials. The atomically thin nanostructure allows mechanical softness and flexibility and high optical transparency of the device, while the large-area continuous thin film structure allows efficient carrier transport within the 2D plane. In addition, the quantum confinement effect in the atomically thin 2D layers introduces interesting optoelectronic properties and superb photodetecting capabilities. When fabricated as soft bioelectronic devices, these interesting and useful material features of the 2D materials enable unconventional device functions in biological and optical sensing, as well as superb performance in electrical and biochemical therapeutic actuations. In this Account, we first summarize the distinctive characteristics of the 2D materials in terms of the mechanical, optical, chemical, electrical, and biomedical aspects and then present application examples of the 2D materials to soft bioelectronic devices based on each aforementioned unique material properties. Among various kinds of 2D materials, we particularly focus on graphene and MoS2. The advantageous material features of graphene and MoS2 include ultrathin thickness, facile functionalization, large surface-to-volume ratio, biocompatibility, superior photoabsorption, and high transparency, which allow the development of high-performance multifunctional soft bioelectronics, such as a wearable glucose patch, a highly sensitive humidity sensor, an ultrathin tactile sensor, a soft neural probe, a soft retinal prosthesis, a smart endoscope, and a cell culture platform. A brief comparison of their characteristics and performances is also provided. Finally, this Account concludes with a future outlook on next-generation soft bioelectronics based on 2D materials.

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Year:  2018        PMID: 30586292     DOI: 10.1021/acs.accounts.8b00491

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  7 in total

1.  Multiscale porous elastomer substrates for multifunctional on-skin electronics with passive-cooling capabilities.

Authors:  Yadong Xu; Bohan Sun; Yun Ling; Qihui Fei; Zanyu Chen; Xiaopeng Li; Peijun Guo; Nari Jeon; Shivam Goswami; Yixuan Liao; Shinghua Ding; Qingsong Yu; Jian Lin; Guoliang Huang; Zheng Yan
Journal:  Proc Natl Acad Sci U S A       Date:  2019-12-23       Impact factor: 11.205

Review 2.  A Review of Transition Metal Dichalcogenides-Based Biosensors.

Authors:  Hongyu Sun; Dujuan Li; Xiaojie Yue; Rui Hong; Weihuang Yang; Chaoran Liu; Hong Xu; Jun Lu; Linxi Dong; Gaofeng Wang; Dongyang Li
Journal:  Front Bioeng Biotechnol       Date:  2022-06-13

Review 3.  Recent advances in three-dimensional microelectrode array technologies for in vitro and in vivo cardiac and neuronal interfaces.

Authors:  Jong Seob Choi; Heon Joon Lee; Swaminathan Rajaraman; Deok-Ho Kim
Journal:  Biosens Bioelectron       Date:  2020-10-09       Impact factor: 10.618

Review 4.  Recent Advances in Organic Piezoelectric Biomaterials for Energy and Biomedical Applications.

Authors:  Dong-Myeong Shin; Suck Won Hong; Yoon-Hwae Hwang
Journal:  Nanomaterials (Basel)       Date:  2020-01-09       Impact factor: 5.076

5.  Locally coupled electromechanical interfaces based on cytoadhesion-inspired hybrids to identify muscular excitation-contraction signatures.

Authors:  Pingqiang Cai; Changjin Wan; Liang Pan; Naoji Matsuhisa; Ke He; Zequn Cui; Wei Zhang; Chengcheng Li; Jianwu Wang; Jing Yu; Ming Wang; Ying Jiang; Geng Chen; Xiaodong Chen
Journal:  Nat Commun       Date:  2020-05-04       Impact factor: 14.919

6.  Soft sensors for a sensing-actuation system with high bladder voiding efficiency.

Authors:  F Arab Hassani; H Jin; T Yokota; T Someya; N V Thakor
Journal:  Sci Adv       Date:  2020-05-01       Impact factor: 14.136

Review 7.  Progress in the Applications of Smart Piezoelectric Materials for Medical Devices.

Authors:  Angelika Zaszczyńska; Arkadiusz Gradys; Paweł Sajkiewicz
Journal:  Polymers (Basel)       Date:  2020-11-22       Impact factor: 4.329

  7 in total

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