EngineeringPhysicsEnvironmental Science

Fan Yang, Hao Liu, Masahito Takakuwa, Tomoyuki Yokota, Takao Someya, J. Fastier-Wooller, Shun Muramatsu, Michitaka Yamamoto, Kenta Murakami, Toshihiro Itoh, Seiichi Takamatsu

2026.4.1SENSORS

DOI: 10.3390/s26082514

Abstract

Microelectromechanical systems are being increasingly deployed in nuclear industry robotics, where their great sensitivity and mechanically stable silicon structures enable reliable sensing in radiation-exposed environments. An ultra-thin silicon strain gauge without an oxide substrate layer designed for robotic electronic skin is evaluated under Co-60 γ irradiation, representative of nuclear decommissioning conditions. The sensor performance is evaluated based on electrical measurements conducted before and after irradiation, focusing on cumulative radiation-induced effects. The results show that silicon strain gauge signal maintains a high linearity (R2 > 0.99) under strain. Across an accumulated dose range up to approximately 15 Gy, only minor variations are observed, including a resistance increase within 1.3% and a reduction in gauge factor within 5% for most specimens. The radiation-induced resistance increases and sensitivity degradation results in a maximum strain estimation error of approximately 22.5 με (≈3.5%) within the tested operating range below 700 με.

Citation format

YANG, Fan, et al. Characterization of an ultra-thin silicon strain gauge exposed to gamma ray irradiation. SENSORS, 2026, 26(8): 2514.