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Updated: May 14, 2025

Carrier Lifetime Measurements in Semiconductors through the Microwave Photoconductivity Decay Method
Published on: April 18, 2019
Accelerating Carrier Transfer in Dual p-n Heterojunctions by Mo-N Coupling to Gain an Ultrahigh-Sensitive NO2 Sensing
Jiahui Zhao1, Jilong Zheng2, Shujia Wang1
1College of Sciences, Northeastern University, Shenyang 110004, China.
Abstract:
Sensitive gas detection performed on a semiconductor in the absence of heat and irradiation activation remains a substantial challenge. In this study, an activation-free NO2 gas sensor was developed by integrating MoOx and conductive polypyrrole (ppy) onto a TiO2 nanotube array (TiNT) through a direct electropolymerization method from simple monomer and metallic ion precursors. Thanks to the abundant defects and Mo-N coupling, a sensing chip based on the as-formed double p-n heterojunctions (TiO2/ppy and ppy/MoOx) exhibited excellent NO2 sensing performances in the absence of any activation, such as ultrahigh response (Rg/Ra = 11.96, 1 ppm), rapid response/recovery abilities (9/11 s), reliable repeatability, high selectivity, and storage stability. Importantly, the Mo-N coupling was shown to play a key role in accelerating the carrier transfer across the ppy/MoOx interface, thus contributing to the outstanding sensing response and kinetics. With a subparts-per-billion theoretical limit of detection (LOD for NO2 = 0.12 ppb), the proposed system represents the best activation-free NO2 chemiresistive sensor reported to date. In addition to a pure target gas, the sensor is capable of analyzing trace NO2 gas in complex exhaled air samples for asthma diagnosis. This study provides new insight for establishing the interface chemistry and tuning the charge transfer involved at semiconductor interfaces, enabling the design of activation-free gas sensors.
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