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Multifunctional monolithic gold nanowires for wireless smart wearable personalized healthcare device
Sang Hoon Hong1, Tae Yeon Kim2, SangBaie Shin3
1Department of Materials Science and Engineering, Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-gu, Pohang, Gyeongbuk, 37673, South Korea.
None:
Despite extensive investigation on soft bioelectronic systems for smart healthcare, it remains a big technical challenge to achieve robust, wireless integration of multifunctional components via monolithic patterning. Here, we developed a wireless wearable healthcare device fabricated using bulk and hollow gold nanowires (Ag@AuNW and AuHNW) with distinct electrical properties. The strain sensor based on AuHNW showed high sensitivity (ΔR/R0 = 773.07 at 100 %) and the Ag@AuNW-based temperature sensor showed superior temperature sensitivity (0.296 % oC-1). Both sensors exhibited remarkable selectivity with minimal cross-sensitivity to strain, pressure, and temperature, and the heater remained stable under mechanical deformation (ΔT = 1.61 °C at 20 % strain). In particular, the nanomaterials in the system showed high biocompatibility with high cell viability over 90 %, and robust stability under chemical (immersion in oxidative and humid) and mechanical (2000 cycles of stretching) test conditions. These components were monolithically patterned onto a single stretchable platform integrating sensors, a heater, circuits, and a wireless module. With a mobile application, the system enabled the real-time monitoring of temperature and motion (finger, neck, elbow, and tiny muscle movement), along with on-demand thermal heating. Taken together, this wireless multifunctional smart wearable device would be successfully harnessed as a next-generation platform for personalized healthcare applications.

