Title :
Ag Doped
Nanomaterials as Relative Humidity Sensor
Author :
Pandey, N.K. ; Tiwari, Karunesh ; Roy, Akash
Author_Institution :
Dept. of Phys., Univ. of Lucknow, Lucknow, India
Abstract :
This paper reports humidity sensing studies of pure WO3 and Ag doped WO3 prepared through soft chemical route. Prepared powders have been given pellet shape by applying pressure of 350 MPa. Pellets have been annealed at temperatures of 400°C-700°C. When exposed to humidity, resistance of the pellets is found to decrease with increase in relative humidity (RH). Sensing element of Ag doped WO3 annealed at 700°C shows average sensitivity of 2.14 M Ω/%RH in the 20%-90% RH range. For this sensing element, the average hysteresis in the value of sensitivity is within 1.00%. For the sensing element of Ag doped WO3, the repeatability over different cyclic operations is within ±3.00% and ±1.00% of the measured values of sensitivity after four and six months, respectively. X-ray diffraction (XRD) pattern of this sensing element shows formation of Ag:WO3 bronze. As calculated from Scherer´s formula, crystallite size for the sensing elements of pure WO3 and Ag doped WO3 are in 12-72 nm and 19-73 nm range, respectively. The average grain size as measured from Scanning Electron Microscopy (SEM) micrograph for pure WO3 is 125 nm, and 147 nm for Ag doped WO3, suggesting agglomeration of the crystallites in the sensing element to form larger grains.
Keywords :
X-ray diffraction; annealing; bronze; crystallites; grain size; humidity sensors; nanosensors; nanostructured materials; powders; scanning electron microscopy; silver; size measurement; tungsten compounds; SEM micrograph; Scherer´s formula; WO3:Ag; X-ray diffraction pattern; XRD pattern; bronze; crystallite size; grain size measurement; pellet resistance; powder preparation; pressure 350 MPa; relative humidity sensor; scanning electron microscopy micrograph; sensing element; silver doped nanomaterial; soft chemical method; temperature 400 degC to 700 degC; Annealing; Humidity; Hysteresis; Metals; Resistance; Sensitivity; Sensors; Annealing; humidity sensor; silver metal; tungsten oxide;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2011.2148115