Lulu Wang, Haojie Gao, Hui Wang, Bokun Chang, Mingyang Wang, Shihui Yu
Flexible temperature sensors (TS) with ultrareliability, high transmittance, and exceptional skin conformability are urgently needed for the advancement of electronic skins. However, fabricating such high-performance sensor devices remains a formidable challenge. Herein, we propose an ultrastable, transparent and skin-attachable resistive TS, composed of a silver nanowire network with nickel oxide (NiO) shells embedded in a 3 μm-thick polyvinylidene fluoride (PVDF). The resultant NiO@Ag NWs/PVDF TS exhibits an exceptional optical transparency of 89.7% and high sensitivity (TCR of 0.30% °C –1 ). Particularly, after 400 heating–cooling cycles within the temperature range of 30–80 °C, the sensitivity of the sensor remains unchanged, demonstrating excellent reliability. More importantly, the sensor can be conformally attached to human skin due to its ultralow bending stiffness of 4.7 × 10 –15 Pa·m 4, offering favorable deformability. In addition, the introduction of the core–shell structure enhances the chemical stability of the sensor, enabling it to outperform conventional Ag NWs/PVDF TS even under harsh environments such as resistance to high temperature and humidity, acid/base, as well as strong oxidant. As a proof of concept, the NiO@Ag NWs/PVDF TS is successfully applied in wearable devices. It demonstrated a rapid response time of 0.6(1) s during human breathing monitoring. This work provides a scalable solution for applications in conformal wearable sensors and health monitoring devices.