Effect of pre-heating temperature on structural and optical properties of sol-gel derived Zn0.8Cd0.2O thin films

Bo Huang , Chao Liu , Xiujian Zhao

Journal of Wuhan University of Technology Materials Science Edition ›› 2016, Vol. 31 ›› Issue (6) : 1206 -1210.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2016, Vol. 31 ›› Issue (6) : 1206 -1210. DOI: 10.1007/s11595-016-1513-6
Advanced Materials

Effect of pre-heating temperature on structural and optical properties of sol-gel derived Zn0.8Cd0.2O thin films

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Abstract

Zn0.8Cd0.2O thin films prepared using the spin-coating method were investigated. X-ray diffraction, scanning electron microscopy, and UV-Vis spectrophotometry were employed to illustrate the effects of the pre-heating temperature on the crystalline structure, surface morphology and transmission spectra of Zn0.8Cd0.2O thin films. When the thin films were pre-heated at 150 °C, polycrystalline ZnO thin films were obtained. When the thin films were pre-heated at temperatures of 200 °C or higher, preferential growth of ZnO nanocrystals along the c-axis was observed. Transmission spectra showed that thin films with high transmission in the visible light range were prepared and effective bandgap energies of these thin films decreased from 3.19 eV to 3.08 eV when the pre-heating temperature increased from 150 °C to 300 °C.

Keywords

Zn0.8Cd0.2O thin films / sol-gel / crystalline structure / optical properties / pre-heating temperature

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Bo Huang, Chao Liu, Xiujian Zhao. Effect of pre-heating temperature on structural and optical properties of sol-gel derived Zn0.8Cd0.2O thin films. Journal of Wuhan University of Technology Materials Science Edition, 2016, 31(6): 1206-1210 DOI:10.1007/s11595-016-1513-6

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References

[1]

Pearton SJ, Abernathy CR, Overberg ME, et al. Wide Band Gap Ferromagnetic Semiconductors and Oxides[J]. Journal of Applied Physics, 2003, 93(1): 1-13.

[2]

Champness CH, Chan CH. Optimization of CdO Layer in a Se-CdO Photovoltaic Cell[J]. Solar Energy Materials and Solar Cells, 1995, 37(1): 75-92.

[3]

Vettumperumal R, Kalyanaraman S, Thangavel R. Photoconductive UV Detectors Based Heterostructures of Cd and Mg Doped ZnO Sol Gel Thin Films[J]. Materials Chemistry and Physics, 2014, 145: 237-242.

[4]

Inamdar SI, Rajpure KY. High-Performance Metal-Semiconductor-Metal UV Photodetector Based on Spray Deposited ZnO Thin Films[J]. Journal of Alloys and Compounds, 2014, 595: 55-59.

[5]

Tari O, Aronne A, Addonizio ML, et al. Sol-Gel Synthesis of ZnO Transparent and Conductive Films: A Critical Approach[J]. Solar Energy Materials and Solar Cells, 2012, 105: 179-186.

[6]

Zhou H, Mei J, Gui P, et al. The Investigation of Al-Doped ZnO as an Electron Transporting Layer for Visible-blind Ultraviolet Photodetector Based on n-ZnO Nanorods/p-Si Heterojunction[J]. Materials Science in Semiconductor Processing, 2015, 38: 67-71.

[7]

Tarwal NL, Patil AR, Harale NS, et al. Gas Sensing Performance of the Spray Deposited Cd-ZnO Thin Films[J]. Journal of Alloys and Compounds, 2014, 598: 282-288.

[8]

Li Y, Pan XH, Jiang J, et al. Realization of Na-Doped P-type Non-polar a-Plane Zn1−xCdxO Films by Pulsed Laser Deposition[J]. Journal of Alloys and Compounds, 2014, 584: 466-470.

[9]

Cao HT, Pei ZL, Gong J, et al. Transparent Conductive Al and Mn Doped ZnO Thin Films Prepared by DC Reactive Magnetron Sputtering[J]. Surface and Coatings Technology, 2004, 184: 84-92.

[10]

Koffyberg FP. Thermoreflectance Spectra of CdO: Band Gaps and Band-Population Effects[J]. Physical Review B, 1976, 13(10): 4470

[11]

Ramakrishna Reddy KT, Shanthini GM, Johnston D, et al. Highly Transparent and Conducting CdO Films Grown by Chemical Spray Pyrolysis[J]. Thin Solid Films, 2003, 427: 397-400.

[12]

Sadofev S, Blumstengel S, Cui J, et al. Visible Band-Gap ZnCdO Heterostructures Grown by Molecular Beam Epitaxy[J]. Applied Physics Letters, 2006, 89: 201907.

[13]

Mares JW, Ruhge FR, Thompson AV, et al. Optical and Morphological Properties of MBE Grown Wurtzite CdxZn1-xO Thin Films[J]. Optical Materials, 2007, 30: 346-350.

[14]

Fouzri A, Boukadhaba MA, Sakly N, et al. Structural, Morphological, Optical and Electrical Properties of Zn(1-x)CdxO Solid Solution Grown on a-and r-Plane Sapphire Substrate by MOCVD[J]. Journal of Crystallization Process and Technology, 2013, 3: 36-48.

[15]

Shtepliuk I, Lashkarev G, Khomyak V, et al. Features of the Influence of the Deposition Power and Ar/O2 Gas Ratio on the Microstructure and Optical Properties of the Zn0.9Cd0.1O Films[J]. Thin Solid Films, 2012, 520: 4772-4777.

[16]

Ma DW, Ye ZZ, Lu HM, et al. Sputtering Deposited Ternary Zn1-xCdxO Crystal Films on Si(111) Substrates[J]. Thin Solid Films, 2004, 461: 250-255.

[17]

Zheng BJ, Lian JS, Zhao L, et al. Structural, Optical and Electrical Properties of Zn1-xCdxO Thin Films Prepared by PLD[J]. Applied Surface Science, 2011, 257: 5657-5662.

[18]

El Sayed AM, Taha S, Said G, et al. Controlling the Structural and Optical Properties of Nanostructured ZnO Thin Films by Cadmium Content[J]. Superlattices and Microstructures, 2014, 65: 35-47.

[19]

Kim MS, Yim KG, Leem J-Y. Effects of Cadmium Content on Optical Parameters of CdxZn1-xO Thin Films Prepared by Sol-Gel Method[J]. Japanese Journal of Applied Physics, 2012, 51: 09MK06.

[20]

El Sayed AM, Taha S, Said G, et al. Structural and Optical Properties of Spin Coated Zn1-xCrxO Nanostructures[J]. Superlattices and Microstructures, 2013, 60: 108-119.

[21]

Kim YS, Tai WP, Shu SJ. Effect of Preheating Temperature on Structural and Optical Properties of ZnO Thin Films by Sol-Gel Process[J]. Thin Solid Films, 2005, 491(1): 153-160.

[22]

Ohyama M, Kouzuka H, Yoko T. Sol-Gel Preparation of ZnO Films with Extremely Preferred Orientation Along (002) Plane from Zinc Acetate Solution[J]. Thin solid films, 1997, 306(1): 78-85.

[23]

Lv J, Huang K, Chen X, et al. Effect of Preheating Temperatures on Microstructure and Optical Properties of Na-Doped ZnO Thin Films by Sol-Gel Process[J]. Superlattices and Microstructures, 2011, 49(4): 477-486.

[24]

Jiang X, Jia CL, Hong RJ. Microstructure Dependence of ZnO:Al Films on the Deposition Conditions and the Surface Morphology of Silicon Substrate[J]. J. Cryst. Growth, 2006, 289(2): 464-471.

[25]

Spanhel L, Anderson MA. Semiconductor Clusters in the Sol-Gel Process: Quantized Aggregation, Gelation, and Crystal Growth in Concentrated ZnO Colloids [J]. Journal of the American Chemical Society, 1991, 113(8): 2826-2833.

[26]

Singh A, Kumar D, Khanna PK, et al. Phase Segregation Limit in ZnCdO Thin Films Deposited by Sol-Gel Method: A Study of Structural, Optical and Electrical Properties[J]. ECS Journal of Solid State Science and Technology, 2013, 2(9): Q136-Q141.

[27]

Cullity BD, Stock SR. Elements of X-Ray Diffraction[M], 2001 3 Englewood Cliffs, NJ: Prentice Hall. 99

[28]

Raoufi D, Raoufi T. The Effect of Heat Treatment on the Physical Properties of Sol-Gel Derived ZnO Thin Films[J]. Applied Surface Science, 2009, 255(11): 5812-5817.

[29]

Wang Y, Tang W, Zhang L. Crystalline Size Effects on Texture Coefficient, Electrical and Optical Properties of Sputter-Deposited Ga-Doped ZnO Thin Films[J]. Journal of Materials Science & Technology, 2015, 31(2): 175-181.

[30]

Shinde VR, Gujar TP, Lokhande CD, et al. Mn Doped and Undoped ZnO Films: A Comparative Structural, Optical and Electrical Properties Study[J]. Materials Chemistry and Physics, 2006, 96(2): 326-330.

[31]

Tang X, Lu HF, Zhao JJ, et al. Study on the Doping Stability and Electronic Structure of Wurtzite Zn1-xCdxO Alloys by First-Principle Calculations[J]. Journal of Physics and Chemistry of Solids, 2010, 71: 336-339.

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