4.7 Article

One-step synthesis and highly gas-sensing properties of hierarchical Cu-doped SnO2 nanoflowers

Journal

SENSORS AND ACTUATORS B-CHEMICAL
Volume 213, Issue -, Pages 171-180

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2015.02.075

Keywords

Nanoflowers; Cu-doped SnO2; Hydrothermal; Gas sensors; Mechanism

Funding

  1. National Natural Science Foundations of China [10874140]
  2. College Basic Scientific Research Operation Cost of Gansu province
  3. Scientific Research Foundation for the Returned Overseas Chinese Scholars
  4. State Education Ministry and Natural Science Foundational of Gansu province [1308RJZA258, 1308RJZA216]
  5. Open Project of Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education, Lanzhou University [LZUMMM2014006]

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The hierarchical pure and Cu-doped SnO2 nanoflowers were synthesized by a low-cost and simple hydrothermal method at 160 degrees C for 20h. These uniform SnO2 nanoflowers were composed of nanosheets. The morphology, structure and gas-sensing performance of the as-synthesized products were characterized by X-ray diffraction pattern (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and gas-sensing measurement device. The results revealed that the average thickness of the nanosheets is around 18 nm. The XRD of the doped products were similar with the undoped, but had a shift slightly toward right, which indicated that Cu ions had entered into the crystal lattice of SnO2 without deteriorating the original crystal structure. The obtained samples were found that the gas sensors based on this structure had a low optimum operating temperature of 260 degrees C. Moreover, 2.5 wt% Cu-doped SnO2 displayed the maximum response and excellent selectivity to acetone at operating temperature of 260 degrees C among all these sensors, and the response value of 2.5 wt% Cu-doped SnO2 to 500 ppm acetone was 221.6 at 260 degrees C, which was about 11.5 times higher than that of ammonia (about 19.3). In addition, the response and recovery time of 2.5 wt% Cu-doped SnO2 were 9 and 6s, respectively. It indicated that our sample showed high sensitivity, short response-recovery time and good selectivity to acetone. Finally, the possible formation mechanism of SnO2 nanoflowers and the gas-sensing mechanism of sensors were proposed, too. (C) 2015 Elsevier B.V. All rights reserved.

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