Electrical Coupling of Organic/Inorganic Semiconductor Interfaces: A Comparative Study

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The present work attempts to investigate the interfacial phenomenon occurring between two dissimilar materials and in particular organic and inorganic hybrid materials. Layer by layer hybrid heterostructures are fabricated by electro-deposition technique. Here, ZnO thin films are deposited using potentiostatic mode using regulated DC voltage supply fixed at-1.0 V (with respect to the reference electrode) with platinum sheet (99.99% purity) used as the counter electrode and ITO-coated glass used as a working electrode. The as obtained ZnO films are then used as substrates for deposition of organic layer. Two conducting polymers namely polyaniline (PANI) and polypyrrole (PPy) are deposited by electro-deposition method on ZnO to form ZnO/PANI and ZnO/PPy interfaces. The two interfaces are compared for their photoconducting response. These studies are further correlated with the properties that the two interfaces share.

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210-214

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June 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] S. Panigrahi, A. Bera, D. Basak, J. Colloid Interf. Sci.  353 (2011) 30.

Google Scholar

[2] A. Bera, T. Ghosh, D. Basak, ACS Appl. Mater. Interf. 2 (2010) 2898.

Google Scholar

[3] T. Ghosh, D. Basak, Nanotechnology 21 (2010) 375202.

Google Scholar

[4] S. Panigrahi, D. Basak, Nanoscale 3 (2011) 2336.

Google Scholar

[5] S. Krishnamoorthy, A. A. Iliadis, Solid State Electron. 52 (2008) 1710.

Google Scholar

[6] M. A. Alim, S. Li, F. Liu, P. Cheng, Phys. Status Solidi 203 (2006) 410.

Google Scholar

[7] L. Lu, R. Li, K. Fan, T. Peng, Sol. Energy 84 (2010) 844.

Google Scholar

[8] L. A. Patil, A. R. Bari, M. D. Shinde, V. Deo, Sens. and Actuat. B -Chem. 149 (2010) 79.

Google Scholar

[9] M. Dutta, D. Basak, Chem. Phys. Lett. 480 (2009) 253.

Google Scholar

[10] K. Kagawa, P. Qian, A. Tanaka, T. M. Swager, Synth. Met. 157 (2007) 733.

Google Scholar

[11] K. Ramanathan, S. Annapoorni, B. D. Malhotra, Sens. and Actuat. B 21 (1994) 165.

Google Scholar

[12] T. Lindfors and A. Ivaska, J. Electroanalytical Chem. 580 (2005) 320.

Google Scholar

[13] G. M. Nascimento, C. H. B. Silva, C.M.S. Izumi and M. L. A. Temperini, Spectrochimica Acta Part A 71 (2008) 869.

Google Scholar

[14] R. Mazeikiene, V. Tomkute, Z. Koudis, G. Niaura and A. Malinaukas, Vibrational Spectroscopy 44 (2007) 201.

Google Scholar

[15] N. K. Singh, S. Shrivastava, S. Rath, S. Annapoorni, App. Surf. Sci. 257 (2010) 1544.

Google Scholar

[16] K. Crowley, J Cassidy, J. Electroanal. Chem. 547 (2003) 75.

Google Scholar

[17] N. Su, H. B. Li, S. J. Yuan, S. P. Yi, E .Q. Yin, Express Polym. Lett. 6 (2012) 697.

Google Scholar