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Plasmon-enhanced water splitting on TiO2-passivated GaP photocatalysts.

Authors :
Qiu, Jing
Zeng, Guangtong
Pavaskar, Prathamesh
Li, Zhen
Cronin, Stephen B.
Source :
Physical Chemistry Chemical Physics (PCCP); 2014, Vol. 16 Issue 7, p3115-3121, 7p
Publication Year :
2014

Abstract

Integrating plasmon resonant nanostructures with photocatalytic semiconductors shows great promise for high efficiency photocatalytic water splitting. However, the electrochemical instability of most III–V semiconductors severely limits their applicability in photocatalysis. In this work, we passivate p-type GaP with a thin layer of n-type TiO<subscript>2</subscript> using atomic layer deposition. The TiO<subscript>2</subscript> passivation layer prevents corrosion of the GaP, as evidenced by atomic force microscopy and photoelectrochemical measurements. In addition, the TiO<subscript>2</subscript> passivation layer provides an enhancement in photoconversion efficiency through the formation of a charge separating pn-region. Plasmonic Au nanoparticles deposited on top of the TiO<subscript>2</subscript>-passivated GaP further increases the photoconversion efficiency through local field enhancement. These two enhancement mechanisms are separated by systematically varying the thickness of the TiO<subscript>2</subscript> layer. Because of the tradeoff between the quickly decaying plasmonic fields and the formation of the pn-charge separation region, an optimum performance is achieved for a TiO<subscript>2</subscript> thickness of 0.5 nm. Finite difference time domain (FDTD) simulations of the electric field profiles in this photocatalytic heterostructure corroborate these results. The effects of plasmonic enhancement are distinguished from the natural catalytic properties of Au by evaluating similar photocatalytic TiO<subscript>2</subscript>/GaP structures with catalytic, non-plasmonic metals (i.e., Pt) instead of Au. This general approach of passivating narrower band gap semiconductors enables a wider range of materials to be considered for plasmon-enhanced photocatalysis for high efficiency water splitting. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
16
Issue :
7
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
100475075
Full Text :
https://doi.org/10.1039/c3cp54674h