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Advanced Multiparallel-Connected Piezoresistive Physical Sensors: Elevating Performance Reliability of Flexible Strain and Pressure Sensors.
Seo, Jungyoon; Li, Shuangying; Tsogbayar, Dashdendev; Hwang, Taehoon; Park, Jisu; Ko, Eun; Park, Su-Jeong; Yang, Chanwoo; Lee, Hwa Sung.
Afiliação
  • Seo J; Department of Materials Science and Chemical Engineering, Hanyang University, Ansan 15588, Republic of Korea.
  • Li S; BK21 FOUR ERICA-ACE Center, Hanyang University, Ansan 15588, Republic of Korea.
  • Tsogbayar D; Department of Materials Science and Chemical Engineering, Hanyang University, Ansan 15588, Republic of Korea.
  • Hwang T; BK21 FOUR ERICA-ACE Center, Hanyang University, Ansan 15588, Republic of Korea.
  • Park J; Department of Materials Science and Chemical Engineering, Hanyang University, Ansan 15588, Republic of Korea.
  • Ko E; BK21 FOUR ERICA-ACE Center, Hanyang University, Ansan 15588, Republic of Korea.
  • Park SJ; Department of Materials Science and Chemical Engineering, Hanyang University, Ansan 15588, Republic of Korea.
  • Yang C; BK21 FOUR ERICA-ACE Center, Hanyang University, Ansan 15588, Republic of Korea.
  • Lee HS; Department of Materials Science and Chemical Engineering, Hanyang University, Ansan 15588, Republic of Korea.
ACS Appl Mater Interfaces ; 16(17): 22229-22237, 2024 May 01.
Article em En | MEDLINE | ID: mdl-38640465
ABSTRACT
A physical sensor with a sensing medium comprising multiparallel-connected (MPC) piezoresistive pathways in both the vertical and horizontal directions was developed to achieve improved sensing performance. The MPC sensing medium reduces the total resistance and offsets noise, offering enhanced signal stability and device reliability and providing a high-performance sensing platform. The signal change and gauge factor (GF) of the 3PW-5L strain sensor (comprising three lines and five layers of piezoresistive pathways horizontally and vertically, respectively) were, respectively, 5.9 and 4.7 times higher than those of the 1PW-1L sensor composed of a monosensing pathway; the hysteresis of the detected signal was also significantly reduced. The linearity of the detected signal increased from 0.912 for 1PW-1L to 0.995 for 3PW-5L, indicating a greater sensing reliability. The direction of the applied tensile strain was successfully detected using the MPC sensing medium with an orthogonal configuration. The MPC piezoresistive sensor composing vertically stacked piezoresistive pathways demonstrated excellent performance as a pressure sensor; the 3PW-5L pressure sensor afforded a GF of 0.121 ± 0.002 kPa-1 with a linearity of 0.998 under an applied pressure ≥16.4 kPa. The MPC piezoresistive physical sensor offers a superior sensing performance and should contribute to the future development of wearable sensors and electronic devices.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article