| Literature DB >> 28334530 |
Mingyang Li1,2, Yi Yang2, Yichuan Ling2, Weitao Qiu1, Fuxin Wang1, Tianyu Liu2, Yu Song2,3, Xiaoxia Liu3, Pingping Fang1, Yexiang Tong1, Yat Li2.
Abstract
High-temperature activation has been commonly used to boost the photoelectrochemical (PEC) performance of hematite nanowires for water oxidation, by inducing Sn diffusion from fluorine-doped tin oxide (FTO) substrate into hematite. Yet, hematite nanowires thermally annealed at high temperature suffer from two major drawbacks that negatively affect their performance. First, the structural deformation reduces light absorption capability of nanowire. Second, this "passive" doping method leads to nonuniform distribution of Sn dopant in nanowire and limits the Sn doping concentration. Both factors impair the electrochemical properties of hematite nanowire. Here we demonstrate a silica encapsulation method that is able to simultaneously retain the hematite nanowire morphology even after high-temperature calcination at 800 °C and improve the concentration and uniformity of dopant distribution along the nanowire growth axis. The capability of retaining nanowire morphology allows tuning the nanowire length for optimal light absorption. Uniform distribution of Sn doping enhances the donor density and charge transport of hematite nanowire. The morphology and doping engineered hematite nanowire photoanode decorated with a cobalt oxide-based oxygen evolution reaction (OER) catalyst achieves an outstanding photocurrent density of 2.2 mA cm-2 at 0.23 V vs Ag/AgCl. This work provides important insights on how the morphology and doping uniformity of hematite photoanodes affect their PEC performance.Entities:
Keywords: Hematite; dopant engineering; morphology engineering; photoanode; water oxidation
Year: 2017 PMID: 28334530 DOI: 10.1021/acs.nanolett.7b00184
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189