研究目的
To elucidate the structural and charge separation properties of titanium-doped hematite films synthesized by an electrospray deposition technique for photoelectrochemical water oxidation.
研究成果
Ti doping (up to 2%) significantly enhances the photoelectrochemical water oxidation performance of hematite films by improving charge separation and transport properties, as evidenced by increased photocurrent density, IPCE, and reduced bulk resistance. Higher Ti concentrations lead to performance degradation due to increased particle size and slower kinetics. The electrospray method is effective for producing efficient photoanodes.
研究不足
The study is limited to Ti doping in hematite films prepared by electrospray; other dopants or synthesis methods were not explored. The performance enhancement plateaus at 2% Ti doping, and higher concentrations degrade performance. The films may have issues with scalability or long-term stability in practical applications.
1:Experimental Design and Method Selection:
The study used an electrospray deposition technique to prepare un-doped and Ti-doped hematite films on FTO substrates, followed by annealing. Various characterization techniques (SEM, XRD, XPS, UV-Vis, PEC measurements, EIS) were employed to investigate the effects of Ti doping.
2:Sample Selection and Data Sources:
Films were prepared with Ti concentrations of 0%, 1%, 2%, 3%, and 4% (by weight). Data were obtained from laboratory experiments using synthesized samples.
3:List of Experimental Equipment and Materials:
FTO-coated glass substrates, iron(III) acetylacetonate, titanium(IV) isopropoxide, ethanol, electrospray system, FE-SEM, XRD, XPS, UV-Vis spectrophotometer, potentiostat, solar simulator, monochromator, EIS setup.
4:Experimental Procedures and Operational Workflow:
Substrates were cleaned, precursor solutions were prepared and sprayed using electrospray at 350°C and 20 kV, films were annealed at 550°C. Characterization involved SEM for morphology, XRD for structure, XPS for chemical analysis, UV-Vis for optical properties, LSV and IPCE for PEC performance, EIS for impedance analysis.
5:Data Analysis Methods:
Data were analyzed using standard techniques: Tauc plots for bandgap calculation, Mott-Schottky analysis for donor density and flat band potential, equivalent circuit fitting for EIS data, and efficiency calculations for charge separation.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容-
FE-SEM
S-4100
Hitachi
Surface morphology and cross-sectional imaging
-
XRD
XRD-6000
Shimadzu
Crystal structure analysis
-
UV-Vis spectrophotometer
Cary 5000
Agilent
Optical properties measurement
-
FTO coated glass
TEC 8
Pilkington
Substrate for film deposition
-
Electrospinning/spray system
NNC-ESP 200T
Korea
Deposition of hematite films
-
Syringe pump
NORM-JECT
Hheke Sass Wolf Germany
Holding and pumping precursor solution
-
XPS
PHI 5000 VersaProbe
Ulvac-PHI
Chemical structure analysis
-
Potentiostat
IviumStat
Photoelectrochemical measurements
-
Solar simulator
Sun 2000
ABET Technologies
Light source for PEC tests
-
Silicon reference cell
PVM 153
PV measurements Inc.
Light intensity calibration
-
Xenon lamp
1000 W
Newport
Light source for IPCE measurements
-
Monochromator
Cornerstone 130
Newport
Wavelength selection for IPCE
-
登录查看剩余10件设备及参数对照表
查看全部