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Inherently Flexible Sn1-xSbxO2 Solid Solution Nanofibers with Light-Driven Plasmon for Wearable Room-Temperature Gas
Rui Tang1, Xiaowei Li1, Yu Liu1
1State Key Laboratory of Integrated Optoelectronics, and Key Laboratory of UV Light-Emitting Materials and Technology of Ministry of Education, School of Physics, Northeast Normal University, 5268 Renmin Street, Changchun 130024, People's Republic of China.
Abstract:
The rapid advancement of the Internet of Things technology has driven a significant demand for wearable and portable gas sensors. However, the inherent brittleness and rigidity of inorganic resistive metal oxide semiconductors (MOSs) limit their flexibility in wearable sensor applications. Herein, for the first time, we present a novel approach to address these limitations by developing inherently flexible gas sensors using electrospun Sn1-xSbxO2 solid solution nanofibers. The self-supported nanofiber membranes exhibit remarkable inherent flexibility, which can be attributed to their ultrafine grain size and hybrid amorphous-crystalline structure that effectively mitigates the formation of macroscopic cracks within the Sn1-xSbxO2 nanofibers. Furthermore, these Sn1-xSbxO2 solid solution nanofibers demonstrate pronounced surface plasmon resonance absorption in the visible-light spectrum, enabling visible-light-driven room-temperature detection of nitrogen dioxide (NO2) at parts-per-billion (ppb) levels, which enhances their applicability for wearable devices. Additionally, the unique nanofiber network structure significantly improves air permeability, thereby facilitating gas sensing reactions while enhancing user comfort. These findings pave the way for the development of wearable real-time gas monitoring technologies, addressing critical challenges within the gas sensing field.

