Issue 8, 2010

Correlation between nanoscale surface potential and power conversion efficiency of P3HT/TiO2nanorod bulk heterojunction photovoltaic devices

Abstract

This is an in depth study on the surface potential changes of P3HT/TiO2 nanorod bulk heterojunction thin films. They are affected by interlayer structures, the molecular weight of P3HT, the processing solvents and the surface ligands on the TiO2. The addition of an electron blocking layer and/or the hole blocking layer to the P3HT/TiO2 thin film can facilitate charge carrier transport and result in a high surface potential shift. The changes in surface potential of multilayered bulk heterojunction films are closely correlated to their power conversion efficiency of photovoltaic devices. Changing ligand leads to the largest change in surface potential yielding the greatest effect on the power conversion efficiency. Merely changing the P3HT molecular weight is less effective and varying the processing solvents is least effective in increasing power conversion efficiency. The steric effect of the ligand has a large influence on the reduction of charge carrier recombination resulting in a great effect on the power conversion efficiency. By monitoring the changes in the surface potential of bulk heterojunction film of multilayer structures, we have obtained a useful guide for the fabrication of high performance photovoltaic devices.

Graphical abstract: Correlation between nanoscale surface potential and power conversion efficiency of P3HT/TiO2 nanorod bulk heterojunction photovoltaic devices

Supplementary files

Article information

Article type
Paper
Submitted
04 Dec 2009
Accepted
22 Feb 2010
First published
25 May 2010

Nanoscale, 2010,2, 1448-1454

Correlation between nanoscale surface potential and power conversion efficiency of P3HT/TiO2 nanorod bulk heterojunction photovoltaic devices

M. Wu, Y. Wu, W. Yen, H. Lo, C. Lin and W. Su, Nanoscale, 2010, 2, 1448 DOI: 10.1039/B9NR00385A

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