Skip to main navigation Skip to search Skip to main content

Reduction of appearance artifacts in wearable on-skin electronics

  • Yijun Liu
  • , Soutaro Ito
  • , Takeo Kato
  • , Liren Wang
  • , Yicheng Zhu
  • , Séverine De Mulatier
  • , Hiroshi Arao
  • , Shugo Suwazono
  • , Hirotoshi Asano
  • , Yuanyuan Zhou
  • , Hinata Mitomo
  • , Huimin Gong
  • , Ohga Nomura
  • , Gakuto Kagawa
  • , Natsumi Watanabe
  • , Mohammad H. Behfar
  • , Yoshinori Kuroiwa
  • , Tetsu Tatsuma
  • , Yusuke Sugano
  • , Hidetoshi Takahashi
  • Makoto Asai, Jiheong Kang, Naoji Matsuhisa*
*Corresponding author for this work
  • University of Tokyo
  • Keio University
  • Taisho University
  • National Hospital Organization Minami Kyoto Hospital
  • Shibaura Institute of Technology
  • Kogakuin University
  • Seoul National University

Research output: Contribution to journalArticleScientificpeer-review

Abstract

Facial electrophysiological signals are crucial to human-machine interfaces and health care monitoring. Soft and skin-conformable electrodes enabled long-term and comfortable signal monitoring. However, the appearance of the electrodes affects the wearer's social interactions and self-identity, making daily usage difficult and leaving appearance artifacts. Here, we developed fully invisible and unperceivable on-skin electrodes free from appearance artifacts. Neither the wearer nor observers can detect the visual and tactile presence of the electrodes on the skin. The unperceivable property was confirmed with sensory experiments and physical characterizations of the film on skin. Furthermore, our invisible electrodes did not affect the psychological conditions of the wearers, which confirms the feasibility of artifact-free monitoring in daily lives. Last, we demonstrated the functionality of our electrode with successful monitoring of various facial electrophysiological signals, including electrooculogram (EOG), electromyogram (EMG), and electroencephalogram (EEG). Our fully invisible electrodes provide a promising direction in developing on-skin bioelectronics, seamlessly integrating health monitoring and human-computer interaction technologies into people's daily lives.

Original languageEnglish
Article numbereaee6417
Pages (from-to)1-12
Number of pages12
JournalScience advances
Volume12
Issue number29
DOIs
Publication statusPublished - 2026
MoE publication typeA1 Journal article-refereed

Funding

This work was supported by the Keio University’s Research Grants for the Research Project Keio 2040 (RISΣ Project) awarded to M.A.S, the JST PRESTO (JPMJPR20B7) awarded to N.M., the JST FOREST (JPMJFR234E) awarded to N.M., the JST ASPIRE for Rising Scientists (JPMJAP2336) awarded to N.M., the JST ASPIRE for Top Scientists (JPMJAP2510) awarded to N.M., the JST SPRING (JPMJSP2108) awarded to Y.L., JSPS (JP25KF0028, JP23K26136, and JP25K16018) awarded to N.M., the JKA Foundation awarded to N.M., the Murata Foundation awarded to N.M., the Daicel: Electronics for Human Interaction awarded to N.M., JSPS postdoctoral fellowships for Research in Japan awarded to S.D., the Nano & Material Technology Development Program through the National Research awarded to J.K., and the Foundation of Korea (NRF) funded by Ministry of Science and ICT (RS-2024-00402972) awarded to J.K.

Keywords

  • Humans
  • Wearable Electronic Devices
  • Artifacts
  • Electrodes
  • Electromyography
  • Electroencephalography
  • Skin
  • Female
  • Electrooculography
  • Male

Fingerprint

Dive into the research topics of 'Reduction of appearance artifacts in wearable on-skin electronics'. Together they form a unique fingerprint.

Cite this