4.7 Article

ppb level ammonia detection of 3-D PbS quantum dots/reduced graphene oxide nanococoons at room temperature and Schottky barrier modulated behavior

期刊

SENSORS AND ACTUATORS B-CHEMICAL
卷 255, 期 -, 页码 2979-2987

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2017.09.120

关键词

3-D PbS quantum dots/reduced graphene oxide nanococoons; Gas sensors; Gas response; Schottky barrier modulation; Room temperature

资金

  1. National Nature Science Foundation of China [11674258, 51506155]
  2. International Science 82 Technology Cooperation Program of China [2013DFR50710]
  3. Fundamental Research Funds for the Central Universities [2017II22GX]
  4. National Nature Science Foundation of Hubei Province [2015CKC898]
  5. Applied Basic Research Program of Wuhan [2016010101010020]

向作者/读者索取更多资源

The development of novel sensing materials is the key issue for the effective detection of ammonia gas at room temperature. In the present work, the novel 3-D cocoon-like architectures of PbS quantum dots (QDs)/reduced graphene oxide ( rGO) composites are self-assembled by using one-step liquid phase method, and the formation process may be vividly depicted by the natural formation process of the 'silk cocoons'. 3-D PbS QDs/rGO nanococoons show a good detection limit of 750 ppb towards ammonia gas at room temperature, which is significantly enhanced compared with those of pure PbS QDs and rGO. Meanwhile, the gas sensing response will be greatly decreased with the increasing of the working temperature and there is no response at 150 degrees C, resulting from Schottky barrier modulation. The abnormal dependence of the gas response on the working temperature may be a unique fingerprint calibration for the ammonia detection. In addition, 3-D PbS QDs/rGO nanococoons have a relatively good selectivity towards ammonia gas at room temperature compared with ethanol, acetone and so on, and the long term test proves that they possess an excellent sensing stability. The sensing enhancement at room temperature may be due to the 3-D special architecture and well-combined interfaces of 3-D PbS QDs/rGO nanococoons, which may favor for the absorption of the gas molecules and the fast charge transport from PbS QDs to rGO, respectively. (C) 2017 Elsevier B.V. All rights reserved.

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