4.7 Article

Enhanced photoelectrochemical water splitting performance of hematite nanorods by Co and Sn co-doping

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 42, Issue 49, Pages 29140-29149

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2017.10.080

Keywords

Hematite nanorods; Co-doping; Photoelectrochemical; Water splitting

Funding

  1. National Basic Research Program of China [2013CB934800]
  2. National Natural Science Foundation of China [51302094, 51575217, 51572097]
  3. China Postdoctoral Science Foundation [2017M612451]
  4. Hubei Province Funds for Distinguished Young Scientists [2014CFA018, 2015CFA034]
  5. State Key Laboratory of Digital Manufacturing Equipment and Technology Funding [DMET2015A01]
  6. Fundamental Research Funds for the Central Universities, HUST [2015QN009]

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Hematite (alpha-Fe2O3) is a promising photoanode candidate for photoelectrochemical water splitting under visible light irradiation. In-situ Co and ex-situ Sn are co-doped into alpha-Fe2O3 nanorods to improve the photoelectrochemical response of the photoanode. It is found that Sn mono-doping enhances the photocurrent density to 0.93 mA/cm(2) under AM 1.5 G illumination. However, the onset potential of the photocurrent shifts positively by similar to 100 mV. By introducing additional Co dopant, the photocurrent density can be further improved to 1.25 mA/cm(2) at 1.23 V (vs. RHE), about four folds that of pristine Fe2O3 photoanode. Moreover, the onset potential of the (Co, Sn) co-doped Fe2O3 photoanode exhibits similar to 140 mV cathodic shift comparing with that of Sn mono-doped one. Electrochemical analysis suggests that the Sn doping mainly contributes to the increased carriers density, while Co doping mostly improves the surface kinetics of oxygen evolution reaction on Fe2O3 nanorods. The cooperation of Co and Sn into Fe2O3 nanorods yields a high incident photon-to-current conversion efficiencies of 23% at 350 nm. Our work provides a facile co-doping method to improve both the photocurrent and onset potential of the Fe2O3 photoanode. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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