Natural Zeolite Incorporated in Zinc Oxide Nanoparticles Doped with Manganese for Degradation of Organic Dye in Water under UV Light Irradiation

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In this study, the photocatalytic degradation of methylene blue has been investigated using natural zeolite modified Mn-doped ZnO nanoparticles synthesized by co-precipitation method. Comparison of degradation efficiency demonstrated that natural zeolite modifiedMn-doped ZnO exhibited higher activity than bare Mn-doped ZnO.

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120-125

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March 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Ruh Ullah, Joydeep Dutta: Journal of Hazardous MaterialsVol. 156 (2008), pp.194-200.

Google Scholar

[2] C. Karunakaran, V. Rajeswari, P. Gomathisankar: Solid State Science Vol. 13 (2011), pp.923-928.

Google Scholar

[3] Qi Xiao, Chi Yao: Materials Chemistry and Physics Vol. 130 (2011), pp.5-9.

Google Scholar

[4] Min Fu, Yalin Li, Siwei fu, Peng Lu, Jing Liu, Fan Dong: Applied Surface Science Vol. 258 (2011), pp.1587-1591.

Google Scholar

[5] M. Mahalakshmi, S. Vishnu Priya, Banumathi Arabindoo, M. Palanichamy, V. Murugesan: Journal of Hazardous Materials Vol. 161 (2009), pp.336-343.

DOI: 10.1016/j.jhazmat.2008.03.098

Google Scholar

[6] A. Neren Ökte, Özge Yılmaz: Applied Catalysis B: Environmental Vol. 85 (2008), p.92–102.

Google Scholar

[7] Rosari Saleh, Nadia Febiana Djaja, Suhendro Purbo Prakoso: Journal of Alloys and Compounds Vol. 546 (2013), p.48–56.

Google Scholar

[8] C. Karunakaran, V. Rajeswari, P. Gomathisankar: Solid State Sciences Vol. 13 (2011), pp.923-928.

Google Scholar

[9] R. Saravanan, Vinod Kumar Gupta, V. Narayanan, A. Stephen: Journal of Molecular Liquids Vol. 181 (2013), pp.133-141.

Google Scholar

[10] A. Jagannatha Reddy, M.K. Kokila, H. Nagabhushana, J.L. Rao, B.M. Nagabhushana, C. Shivakumara, R.P.S. Chakradhar: Spectrochimica Acta Part AVol. 79 (2011), p.476–480.

DOI: 10.1016/j.saa.2011.03.014

Google Scholar

[11] Y. Du, R.Z. Chen, J.F. Yao, H.T. Wang: Journal of Alloys and Compounds Vol. 551(2013), pp.125-130.

Google Scholar

[12] S. Senthilkumaar, K. Rajendran, S. Banerjee, T.K. Chini, V. Sengodan: Materials Science in Semiconductor Processing Vol. 11 (2008), p.6–12.

DOI: 10.1016/j.mssp.2008.04.005

Google Scholar

[13] D.J. Petkowicz, R. Brambilla, C. Radtke, C.D.S. da Silva, Z.N. da Rocha, S.B.C. Pergher, J.H.Z. dos Santos: Applied Catalyst A Vol. 357 (2009), pp.125-134.

DOI: 10.1016/j.apcata.2008.12.040

Google Scholar

[14] Cheng Wang, Huisheng Shi, Yan Li: Applied Surface Science Vol. 258 (2012), p.4328–4333.

Google Scholar

[15] Cheng Wang, Huisheng Shi, Yan Li: Applied Surface Science Vol. 257 (2011), p.6873–6877.

Google Scholar

[16] J. Das, I.R. Evans, D. Khushalani: Inorganic Chemistry Vol. 48 (2009), p.3508.

Google Scholar

[17] R. Salma, F. Ghribi, A. Houas, C. Barthou, L. El Mir: Thin Solid Films Vol. 519 (2011), pp.5792-5795.

DOI: 10.1016/j.tsf.2010.12.197

Google Scholar

[18] Yean Ling Pang, Ahmad Zuhairi Abdullah: Applied Catalysis B: Environmental Vol. 129 (2013), pp.473-481.

Google Scholar

[19] K.C. Barick, Sarika Singh, M. Aslam, D. Bahadur: Microporous and Mesoporous Materials Vol. 134 (2010), pp.195-202.

DOI: 10.1016/j.micromeso.2010.05.026

Google Scholar

[20] N. Sapawe, A.A. Jalil, S. Triwahyono, R.N.R.A. Sah, N.W.C. Jusoh, N.H.H. Hairom, J. Efendi: Applied Catalysis A: General Vol. 456 (2013), pp.144-158.

DOI: 10.1016/j.apcata.2013.02.025

Google Scholar

[21] A. Nezamzadeh-Ejhieh, S. Hushmandrad: Applied Catalysis A: General Vol. 388 (2010), pp.149-159.

DOI: 10.1016/j.apcata.2010.08.042

Google Scholar