Bioinspired nanomaterials for wearable sensing and human-machine interfacing

被引:0
作者
Vishesh Kashyap
Junyi Yin
Xiao Xiao
Jun Chen
机构
[1] University of California,Department of Bioengineering
[2] Los Angeles,Department of Mechanical and Aerospace Engineering
[3] University of California,undefined
[4] Los Angeles,undefined
来源
Nano Research | 2024年 / 17卷
关键词
bioinspired nanomaterials; human–machine interface; wearable sensors; wearable bioelectronics;
D O I
暂无
中图分类号
学科分类号
摘要
The inculcation of bioinspiration in sensing and human-machine interface (HMI) technologies can lead to distinctive characteristics such as conformability, low power consumption, high sensitivity, and unique properties like self-healing, self-cleaning, and adaptability. Both sensing and HMI are fields rife with opportunities for the application of bioinspired nanomaterials, particularly when it comes to wearable sensory systems where biocompatibility is an additional requirement. This review discusses recent development in bioinspired nanomaterials for wearable sensing and HMIs, with a specific focus on state-of-the-art bioinspired capacitive sensors, piezoresistive sensors, piezoelectric sensors, triboelectric sensors, magnetoelastic sensors, and electrochemical sensors. We also present a comprehensive overview of the challenges that have hindered the scientific advancement in academia and commercialization in the industry.
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页码:445 / 461
页数:16
相关论文
共 1286 条
[81]  
Ji X Q(2018)Finite element modeling of piezoelectric sensors and actuators Adv. Mater. 30 1706299-887
[82]  
Rao Z(2022)Bioinspired multiresonant acoustic devices based on electrospun piezoelectric polymeric nanofibers ACS Energy Lett. 7 1820-156
[83]  
Zhang W(2021)Bionic single-electrode electronic skin unit based on piezoelectric nanogenerator Sci. Robot. 6 eabd5483-1235
[84]  
Liu C(2010)A self-powered sensor mimicking slow- and fast-adapting cutaneous mechanoreceptors AIAA J. 48 635-971
[85]  
Wang Z M(2007)Conformably skin-adherent piezoelectric patch with bioinspired hierarchically arrayed microsuckers enables physical energy amplification AIP Conf. Proc. 922 335-63
[86]  
Zhang S(2019)Somatosensory actuator based on stretchable conductive photothermally responsive hydrogel Electronics 8 169-75
[87]  
Zhang B T(2021)Durability and survivability of piezoelectric wafer active sensors on metallic structure Adv. Funct. Mater. 31 2010962-224
[88]  
Hu M L(2017)Mathematical model for electrical noise of piezoelectric sensor Joule 1 480-570
[89]  
Servati P(2017)A review of electric impedance matching techniques for piezoelectric sensors, actuators and transducers J. Mater. Res. 32 1628-201
[90]  
Xiao X(2016)Muscle fibers inspired high-performance piezoelectric textiles for wearable physiological monitoring ACS Nano 10 7874-702