异质结
纳米材料
材料科学
量子点
选择性
纳米技术
半导体
氧化物
光电子学
催化作用
生物化学
化学
冶金
作者
Jinzhou Bai,Yanbai Shen,Sikai Zhao,Ang Li,Zhangke Kang,Baoyu Cui,Dezhou Wei,Zhenyu Yuan,Fanli Meng
标识
DOI:10.1002/admt.202201671
摘要
Abstract Traditional metal oxide semiconductor gas sensors are facing significant challenges for portable devices and integration due to large power consumption caused by high working temperature. 2D nanomaterials with large specific surface areas, rich active sites, and tunable electrical properties are proved to be promising candidates for room‐temperature gas sensors. However, several disadvantages including weak response, sluggish response/recovery kinetics, and poor selectivity still need to be overcome for high‐performance gas sensors. Herein, SnO 2 quantum dots (QDs) with a diameter of ≈3 nm functionalized SnS 2 nanosheets with a thickness of ≈17 nm are synthesized via a two‐step solvothermal method, which exhibits a high response of 11.1 to 100 ppm NH 3 at room temperature of 25 °C with fast response speed and good repeatability, high selectivity, and long‐term stability. The sensing mechanism is mainly ascribed to 0D/2D heterostructure, synergistic effect, and n‐n heterojunction constructed across the interfaces between SnO 2 QDs and SnS 2 nanosheets. The as‐prepared nanomaterials may contribute to the reasonable design of heterostructure between 0D QDs and 2D nanomaterials, and offer a promising candidate for room‐temperature NH 3 detection.
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