4.8 Article

MoO3 Nanorods Decorated by PbMoO4 Nanoparticles for Enhanced Trimethylamine Sensing Performances at Low Working Temperature

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 21, Pages 24610-24619

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c04722

Keywords

Pb2+ ions; PbMoO4/MoO3 heterostructure; trimethylamine detection; gas sensing; seafood freshness

Funding

  1. National Natural Science Foundation of China [21876206]
  2. Natural Scientific Foundation of Shandong [ZR2020ZD13]
  3. Science and Technology Projects of Qingdao [21-1-4-sf-7nsh]
  4. Youth Innovation and Technology project of Universities in Shandong Province [2020KJC007]
  5. National Key Technologies R&D Program of China
  6. Key Projects of Intergovernmental International Innovation Cooperation [2018YFE0118200]
  7. Shandong Key Research and Development Project [2019JZZY010506]
  8. Taishan Scholar Foundation [tspd20210308]
  9. 111 Program of National College Disciplinary Innovation [B13031]

Ask authors/readers for more resources

The gas sensing performance of metal oxides can be enhanced by the development of a PbMoO4/MoO3 heterostructure, which improves the response to TMA and reduces the working temperature.
The gas sensing performance of metal oxides is limited by the lack of conductivity and sensing activity. Inducing the release of more electrons and activating more chemisorbed oxygen ions to participate in the gas sensing reaction can effectively overcome this limitation. The development of a PbMoO4/MoO3 heterostructure prepared by the addition of Pb2+ ions with MoO3 nanorods is reported for highly sensitive and selective trimethylamine (TMA) detection. The response of the PbMoO4/MoO3 sensor (33.2) to 10 ppm TMA is improved 3-fold compared to the MoO3 sensor (10.7), and the working temperature is reduced from 170 to 133 degrees C. The enhanced gas sensing performance and mechanism of PbMoO4/MoO3 were demonstrated using the energy band diagram and X-ray photoelectron spectroscopy (XPS) analysis. It is mainly attributed to the following promotion: (1) the induction of Pb2+ ions increases the electron density around the Mo element, enabling the decorated MoO3 to release electrons easily; (2) the formed PbMoO4/MoO3 heterojunction endows a high degree of electron transfer at the interface; (3) the formation of the potential barrier causes the device resistance to decrease significantly upon TMA exposure. Finally, the practicability of the sensor was verified by detecting TMA released from Carassius auratus and shrimp to reflect their freshness.

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