4.5 Article

Effect of Annealing Temperature on Bi3.25La0.75Ti3O12 Powders for Humidity Sensing Properties

Journal

JOURNAL OF ELECTRONIC MATERIALS
Volume 46, Issue 1, Pages 377-385

Publisher

SPRINGER
DOI: 10.1007/s11664-016-4862-1

Keywords

Bi3.25La0.75Ti3O12 powders; humidity sensing properties; annealing temperature; complex impedance plots

Funding

  1. National Natural Science Foundation of China [51402250, 51272158]
  2. Changjiang Scholars and Innovative Research Team in University [IRT-14R48]
  3. Changjiang Scholar Incentive Program of the Education Ministry of China [[2009]17]
  4. Hunan Provincial Natural Science Foundation of China [2015JJ4046]
  5. Scientific Research Fund of Hunan Provincial Education Department [14B168]

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Bi3.25La0.75Ti3O12 (BLT) powders have been synthesized via the metal-organic decomposition method with annealing of the BLT precursor solution at 350 degrees C, 450 degrees C, 550 degrees C, 650 degrees C or 750 degrees C. The crystalline structure and morphology of the BLT powders were characterized by x-ray diffraction analysis, field-emission scanning electron microscopy, energy-dispersive x-ray spectroscopy, and specific surface and pore size analyses. The humidity sensing properties of the BLT powders annealed at the five temperatures were investigated to determine the effect of annealing temperature. The annealing temperature strongly influenced the grain size, pore size distribution, and specific surface area of the BLT powders, being largely correlated to their humidity sensing properties. The specific surface area of the BLT powder annealed at 550 degrees C was 68.2 m(2)/g, much larger than for the other annealing temperatures, and the majority of the pores in the BLT powder annealed at 550 degrees C were mesoporous, significantly increasing the adsorption efficiency of water vapor onto the surface of the material. The impedance of the BLT powder annealed at 550 degrees C varied by more than five orders of magnitude over the whole humidity range at working frequency of 100 Hz, being approximately five times greater than for BLT powders annealed at other temperatures. The response time was about 8 s, with maximum hysteresis of around 3% relative humidity. The BLT powder annealed at 550 degrees C exhibited the best humidity sensing properties compared with the other annealing temperatures. We expect that these results will offer useful guidelines for preparation of humidity sensing materials.

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