Influence of bath temperature on microstructure and NH3 sensing properties of chemically synthesized CdO thin films

Author:

Sharma A.K.1,Potdar S.S.2,Yewale M.A.3,Shirgaonkar Deepak B.4,Pakhare K.S.5,Sargar B.M.6,Rokade M.V.7,Patil U.M.8

Affiliation:

1. School of Physics , Shri Mata Vaishnodevi University , Kakryal, Katra - 182320 , J&K, India

2. Department of Physics, Sanjeevan Engineering and Technology Institute , Panhala - 416201 , MS, India

3. Department of Physics, New Arts, Commerce and Science College , Parner, Ahmednagar , MS, India

4. Department of Physics, Ashokrao Mane Group of Institution , Vathar, Kolhapur , MS, India

5. Department of Chemistry , Anandibai Raorane Art, Commerce and Science College , Vaibhavwadi , MS- 416810 , India

6. Material Science Research Laboratory , Department of Chemistry, Jaysingpur College , Jaysingpur , MS - 416101 , India

7. Semiconductor Laboratory , Centre for Materials for Electronics Technology (C-MET) , IDA Phase-III, Cherlapally, HCL (PO), Hyderabad - 500051 , India

8. Centre for Interdisciplinary Research, D.Y. Patil Education Society ( Deemed to be University ), Kolhapur - 416006 , India

Abstract

Abstract Cadmium oxide (CdO) thin films were synthesized using chemical bath deposition (CBD) method from aqueous cadmium nitrate solution. The bath temperatures were maintained at room temperature (25 °C) and at higher temperature (80 °C). The structural studies revealed that the films showed mixed phases of CdO and Cd(OH)2 with hexagonal/monoclinic crystal structure. Annealing treatment removed the hydroxide phase and the films converted into pure CdO with cubic, face centered crystal structure. SEM micrographs of as-deposited films revealed nanowire-like morphology for room temperature deposited films while nanorod-like morphology for high temperature deposited films. However, cube-like morphology was observed after air annealing. Elemental composition was confirmed by EDAX analysis. Band gap energies of the as-deposited films varied over the range of 3 eV to 3.5 eV, whereas the annealed films showed band gap energy variation in the range of 2.2 eV to 2.4 eV. The annealed films were successfully investigated for NH3 sensing at different operating temperatures and at different gas concentrations. The room temperature synthesized film showed a response of 17.3 %, whereas high temperature synthesized film showed a response of 13.5 % at 623 K upon exposure to 24 ppm of NH3.

Publisher

Walter de Gruyter GmbH

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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