材料科学
异质结
纳米棒
肖特基二极管
光电子学
石墨烯
肖特基势垒
热离子发射
纳米片
氧化物
纳米技术
二极管
电子
量子力学
物理
冶金
作者
Nguyen Minh Triet,Le Thai Duy,Byeong‐Ung Hwang,Adeela Hanif,Saqib Siddiqui,Kyung-Ho Park,Chu‐Young Cho,Nae‐Eung Lee
标识
DOI:10.1021/acsami.7b06461
摘要
A Schottky diode based on a heterojunction of three-dimensional (3D) nanohybrid materials, formed by hybridizing reduced graphene oxide (RGO) with epitaxial vertical zinc oxide nanorods (ZnO NRs) and Al0.27GaN0.73(∼25 nm)/GaN is presented as a new class of high-performance chemical sensors. The RGO nanosheet layer coated on the ZnO NRs enables the formation of a direct Schottky contact with the AlGaN layer. The sensing results of the Schottky diode with respect to NO2, SO2, and HCHO gases exhibit high sensitivity (0.88–1.88 ppm–1), fast response (∼2 min), and good reproducibility down to 120 ppb concentration levels at room temperature. The sensing mechanism of the Schottky diode can be explained by the effective modulation of the reverse saturation current due to the change in thermionic emission carrier transport caused by ultrasensitive changes in the Schottky barrier of a van der Waals heterostructure between RGO and AlGaN layers upon interaction with gas molecules. Advances in the design of a Schottky diode gas sensor based on the heterojunction of high-mobility two-dimensional electron gas channel and highly responsive 3D-engineered sensing nanomaterials have potential not only for the enhancement of sensitivity and selectivity but also for improving operation capability at room temperature.
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