皮膚型センサーで体内外の動きを測定(Skin-like sensor monitors internal, external body movement, electrical signals)

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2025-07-09 ペンシルベニア州立大学 (PennState)

皮膚型センサーで体内外の動きを測定(Skin-like sensor monitors internal, external body movement, electrical signals)
A flexible, skin-like sensor can monitor movement and electrical signals inside the body, with the potential to aid healing and bladder control. Credit: Huanyu “Larry” Cheng and Jennifer M. McCann. All Rights Reserved.

ペンシルベニア州立大学を中心とした研究チームは、皮膚のように柔軟で伸縮性があり、体内外の動きや電気信号を高精度に検出できる新型センサーを開発した。金属有機構造体やカーボンナノチューブ、イオン液体入りゴム素材を組み合わせることで、皮膚との密着性や安定性、感度を高次元で両立。心拍や脳波などの信号から、膀胱の伸縮や筋電活動まで測定可能で、将来的には検知と治療(電気刺激)を1台で行う統合デバイスへの発展が期待されている。

<関連情報>

バイオインスパイアされた耐久性のある機械的・電気的デュアルモーダルセンサがイオン・電子の混合伝導と機械的連動によって多機能センシングを可能にする Bioinspired Durable Mechanical-Bioelectrical Dual-Modal Sensors Enabled by Mixed Ion-Electron Conduction and Mechanical Interlocking for Multifunctional Sensing

Yongjing Zhang, Shuai Wang, Yongju Gao, Meili Xia, Anh Tuan Hoang, Wenjing Guo, Fuqin Wu, Pengmin Liu, Duxia Cao, Songfang Zhao, Guoqiang Li, Yan Li, Huanyu Cheng, Jong-Hyun Ahn
Advanced Functional Materials  Published: 22 April 2025
DOI:https://doi.org/10.1002/adfm.202501122

Abstract

Skin-like robust materials with prominent sensing performance have potential applications in flexible bioelectronics. However, it remains challenging to achieve mutually exclusive properties simultaneously including low interfacial impedance, high stretchability, sensitivity, and electrical resilience. Herein, a material and structure design concept of mixed ion-electron conduction and mechanical interlocking structure is adopted to fabricate high-performance mechanical-bioelectrical dual-modal composites with large stretchability, excellent mechanoelectrical stability, low interfacial impedance, and good biocompatibility. Flower-like conductive metal-organic frameworks (cMOFs) with enhanced conductivity through the overlapped level of metal-ligand orbital are assembled, which bridge carbon nanotubes (denoted as cMOFs-b-CNTs). Then, precursor of poly(styrene-block-butadiene-block-styrene)/ionic liquid penetrates the pores and cavities in cMOFs-b-CNTs-based network fabricated via filtration process, creating a semi-embedded structure via mechanical interlocking. Thus, the mixed ion-electron conduction and semi-embedded structure endow the as-prepared composites with a low interfacial impedance (51.60/28.90 kΩ at 10/100 Hz), wide sensing range (473%), high sensitivity (2195.29), rapid response/recovery time (60/85 ms), low limit of detection (0.05%), and excellent durability (>5000 cycles to 50% strain). Demonstrations of multifunctional mechanical-bioelectrical dual-modal sensors for in vivo/vitro monitoring physiological motions, electrophysiological activities, and urinary bladder activities validate the possibility for practical uses in biomedical research areas. This concept creates opportunities for the construction of durable skin-like sensing materials.

医療・健康
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