石墨烯
检出限
材料科学
量子点
氧化物
吸附
石墨烯量子点
光电子学
工作温度
纳米技术
化学
物理
物理化学
色谱法
冶金
热力学
作者
Jinho Lee,Minsu Park,Young Geun Song,Donghwi Cho,Kwangjae Lee,Young‐Seok Shim,Seokwoo Jeon
出处
期刊:Nanoscale advances
[Royal Society of Chemistry]
日期:2023-01-01
卷期号:5 (10): 2767-2775
被引量:15
摘要
NO2 is a major air pollutant that should be monitored due to its harmful effects on the environment and human health. Semiconducting metal oxide-based gas sensors have been widely explored owing to their superior sensitivity towards NO2, but their high operating temperature (>200 °C) and low selectivity still limit their practical use in sensor devices. In this study, we decorated graphene quantum dots (GQDs) with discrete band gaps onto tin oxide nanodomes (GQD@SnO2 nanodomes), enabling room temperature (RT) sensing towards 5 ppm NO2 gas with a noticeable response ((Ra/Rg) - 1 = 4.8), which cannot be matched using pristine SnO2 nanodomes. In addition, the GQD@SnO2 nanodome based gas sensor shows an extremely low detection limit of 1.1 ppb and high selectivity compared to other pollutant gases (H2S, CO, C7H8, NH3, and CH3COCH3). The oxygen functional groups in GQDs specifically enhance NO2 accessibility by increasing the adsorption energy. Strong electron transfer from SnO2 to GQDs widens the electron depletion layer at SnO2, thereby improving the gas response over a broad temperature range (RT-150 °C). This result provides a basic perspective for utilizing zero-dimensional GQDs in high-performance gas sensors operating over a wide range of temperatures.
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