| Literature DB >> 26415539 |
Yuting Liu1,2, Zhen Xu3, Min Yin4, Haowen Fan5, Weijie Cheng6,7, Linfeng Lu8, Ye Song9, Jing Ma10, Xufei Zhu11.
Abstract
The short lifetime of photogenerated charge carriers of hematite (α-Fe2O3) thin films strongly hindered the PEC performances. Herein, α-Fe2O3 thin films with surface nanowire were synthesized by electrodeposition and post annealing method for photoelectrocatalytic (PEC) water splitting. The thickness of the α-Fe2O3 films can be precisely controlled by adjusting the duration of the electrodeposition. The Au nanoparticles (NPs) and Al2O3 shell by atom layer deposition were further introduced to modify the photoelectrodes. Different constructions were made with different deposition orders of Au and Al2O3 on Fe2O3 films. The Fe2O3-Au-Al2O3 construction shows the best PEC performance with 1.78 times enhancement by localized surface plasmon resonance (LSPR) of NPs in conjunction with surface passivation of Al2O3 shells. Numerical simulation was carried out to investigate the promotion mechanisms. The high PEC performance for Fe2O3-Au-Al2O3 construction electrode could be attributed to the Al2O3 intensified LSPR, effective surface passivation by Al2O3 coating, and the efficient charge transfer due to the Fe2O3-Au Schottky junctions.Entities:
Keywords: Atomic layer deposition; Hematite; Photoelectrocatalytic water splitting; Surface passivation; Surface plasmon resonance
Year: 2015 PMID: 26415539 PMCID: PMC4586179 DOI: 10.1186/s11671-015-1077-y
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Digital photographs of a Fe and b α-Fe2O3 films on the FTO glass; c XRD patterns of Fe and α-Fe2O3 films
Fig. 2a Top view of α-Fe2O3 with electrodeposition time of 180 s; cross-sectional view of α-Fe2O3 with different deposition time b 120 s; c 180 s; d 360 s, the electrodeposition current is 20 mA · cm−2
Fig. 3Surface morphology of Fe2O3-Au electrodes with different Au sputtering time. a 10 s; b 15 s; c 25 s; d 35 s. The sputtering current is 30 mA • cm−2. All electrodes are annealed at 300 °C for 1 h after the sputtering of Au
Fig. 4LSV curves of a pristine Fe2O3 electrode with varying deposition time, b pristine Fe2O3 and Fe2O3-Au electrodes with different Au sputtering time, and c pristine Fe2O3 and modified Fe2O3. d Photocurrent responses of pristine Fe2O3 and modified Fe2O3 at an applied potential of 0.4 V. Electrolyte, 1 M KOH solution, illumination: a 300 W Xe lamp coupled with an AM 1.5 filter
Fig. 5a Mott–Schottky plots of five different electrodes at a fixed frequency of 1 kHz in 1 M KOH solution under dark condition; b charge carrier density (ND) obtained from Mott-Schottky analysis, c Nyquist plots of five electrodes in 1 M KOH solution under dark condition
Fig. 6Cross-sectional electric field intensity distributions for five electrodes at an incident light wavelength of 574 nm, a Fe2O3-Au, b Fe2O3-Al2O3-Au, and c Fe2O3-Au-Al2O3. The size of Au NP is 10 nm