Issue 17, 2016

Mechanism of biphasic charge recombination and accumulation in TiO2 mesoporous structured perovskite solar cells

Abstract

Organic–inorganic halide perovskite solar cells are becoming the next big thing in the photovoltaic field owing to their rapidly developing photoelectric conversion performance. Herein, mesoporous structured perovskite devices with various perovskite grain sizes are fabricated by a sequential dropping method, and the charge recombination dynamics is investigated by transient optical-electric measurements. All devices exhibit an overall power conversion efficiency around 15%. More importantly, a biphasic trap-limited charge recombination process is proposed and interpreted by taking into account the specific charge accumulation mechanism in perovskite solar cells. At low Fermi levels, photo-generated electrons predominately populate in the perovskite phase, while at high Fermi levels, most electrons occupy traps in mesoporous TiO2. As a result, the dynamics of charge recombination is, respectively, dominated by the perovskite phase and mesoporous TiO2 in these two cases. The present work would give a new perspective on the charge recombination process in meso-structured perovskite solar cells.

Graphical abstract: Mechanism of biphasic charge recombination and accumulation in TiO2 mesoporous structured perovskite solar cells

Supplementary files

Article information

Article type
Paper
Submitted
27 Feb 2016
Accepted
29 Mar 2016
First published
29 Mar 2016

Phys. Chem. Chem. Phys., 2016,18, 12128-12134

Mechanism of biphasic charge recombination and accumulation in TiO2 mesoporous structured perovskite solar cells

H. Wang, Y. Wang, M. Yu, J. Han, Z. Guo, X. Ai, J. Zhang and Y. Qin, Phys. Chem. Chem. Phys., 2016, 18, 12128 DOI: 10.1039/C6CP01360K

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