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  4. Back Electron-Hole Recombination in Hematite Photoanodes for Water Splitting
 
research article

Back Electron-Hole Recombination in Hematite Photoanodes for Water Splitting

Le Formal, Florian  
•
Pendlebury, Stephanie R.
•
Cornuz, Maurin  
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2014
Journal Of The American Chemical Society

The kinetic competition between electron-hole recombination and water oxidation is a key consideration for the development of efficient photoanodes for solar driven water splitting. In this study, we employed three complementary techniques, transient absorption spectroscopy (TAS), transient photocurrent spectroscopy (TPC), and electrochemical impedance spectroscopy (EIS), to address this issue for one of the most widely studied photoanode systems: nanostructured hematite thin films. For the first time, we show a quantitative agreement between all three techniques. In particular, all three methods show the. presence of a recombination process on the 10 ms to 1 s time scale, with the time scale and yield of this loss process being dependent upon applied bias. From comparison of data between these techniques, we are able to assign this recombination phase to recombination of bulk hematite electrons with long-lived holes accumulated at the semiconductor/electrolyte interface. The data from all three techniques are shown to be consistent with a simple kinetic model based on competition between this, bias dependent, recombination pathway and water oxidation by these long-lived holes. Contrary to most existing models, this simple model does not require the consideration of surface states located energetically inside the band gap. These data suggest two distinct roles for the space charge layer developed at the semiconductor/electrolyte interface under anodic bias. Under modest anodic bias (just anodic of flatband), this space charge layer enables the spatial separation of initially generated electrons and holes following photon absorption, generating relatively long-lived holes (milliseconds) at the semiconductor surface. However, under such modest bias conditions, the energetic barrier generated by the space charge layer field is insufficient to prevent the subsequent recombination of these holes with electrons in the semiconductor bulk on a time scale faster than water oxidation. Preventing this back electron-hole recombination requires the application of stronger anodic bias, and is a key reason why the onset potential for photocurrent generation in hematite photoanodes is typically similar to 500 mV anodic of flat band and therefore needs to be accounted for in electrode design for PEC water splitting.

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Type
research article
DOI
10.1021/ja412058x
Web of Science ID

WOS:000331343300056

Author(s)
Le Formal, Florian  
Pendlebury, Stephanie R.
Cornuz, Maurin  
Tilley, S. David  
Graetzel, Michael  
Durrant, James R.
Date Issued

2014

Publisher

American Chemical Society

Published in
Journal Of The American Chemical Society
Volume

136

Issue

6

Start page

2564

End page

2574

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPI  
Available on Infoscience
April 2, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/102396
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