Issue 31, 2016

Surface modification of LaFeO3 by Co-Pi electrochemical deposition as an efficient photoanode under visible light

Abstract

LaFeO3 is a promising visible light photocatalyst due to its favorable band gap and excellent stability in aqueous solution. The cathodic photocurrent for p-type characteristics reversing to anodic photocurrent on a LaFeO3 photoanode is observed under visible light (>420 nm) and the anodic photoelectrochemical water oxidation performance is improved by electro-deposition of amorphous cobalt-phosphate (Co-Pi). It shows that the presence of Co-Pi down-shifts the onset potential by ∼560 mV for anodic photocurrent, and the improvement can be attributed to enhanced water oxidation due to the CoII/CoIII-OH discharge in Co-Pi decorated layers by cyclic voltammetry test. The transition anodic photocurrent is improved by about six times after Co-Pi coating under visible light at 0.50 V vs. Ag/AgCl and the electrochemical impedance spectroscopy certifies the enhanced charge transfer, which contributes to the meliorative anodic photocurrent. The suppression of the photogenerated electron–hole recombination after Co-Pi coating on LaFeO3 photoanode is directly demonstrated by the reduced photoluminescence spectrum. Combined with the accelerated carrier consumption on the surface and enhanced carrier separation on the photoanode, the incident photon-to-current conversion efficiencies of LaFeO3 can be promoted from 1.37% to 2.14% at 400 nm owing to the presence of the Co-Pi layer.

Graphical abstract: Surface modification of LaFeO3 by Co-Pi electrochemical deposition as an efficient photoanode under visible light

Supplementary files

Article information

Article type
Paper
Submitted
21 Jan 2016
Accepted
01 Mar 2016
First published
02 Mar 2016

RSC Adv., 2016,6, 26192-26198

Surface modification of LaFeO3 by Co-Pi electrochemical deposition as an efficient photoanode under visible light

Q. Peng, J. Wang, Y. W. Wen, B. Shan and R. Chen, RSC Adv., 2016, 6, 26192 DOI: 10.1039/C6RA01810F

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