研究目的
To synthesize nanosheets-assembled TiO2 hierarchical architectures (N-TiO2-HA) and relative composites for photocatalytic and electrocatalytic application using bacteria as template and reactor.
研究成果
Nanosheets-assembled TiO2 hierarchical architectures were successfully synthesized using bacteria as template and reactor. The composites showed excellent visible-light photocatalytic and electrocatalytic activities. Further studies will focus on incorporation of other metal organic frameworks for photocatalytic application and extending its application as TiO2-based electrode materials.
研究不足
The study focuses on the synthesis and application of TiO2 hierarchical architectures and their composites for photocatalytic and electrocatalytic applications. The limitations include the need for optimization of calcination temperature and the exploration of other metal organic frameworks for photocatalytic application.
1:Experimental Design and Method Selection:
A bioinspired strategy was developed using bacteria as template and reactor for the synthesis of N-TiO2-HA.
2:Sample Selection and Data Sources:
Three kinds of bacteria (Staphylococcus aureus, Bacillus subtilis, and Escherichia coli) were used for the synthesis.
3:List of Experimental Equipment and Materials:
Titan G260-300 transmission electron microscope, Hitachi SU8010 scanning electron microscope, Bruker D8 Advance X-ray diffraction, Thermo ESCALAB 250XI X-ray photoelectron spectroscopy, Lambda 650 UV/vis spectrophotometer, Chenhua CHI660E electrochemical workstation.
4:Experimental Procedures and Operational Workflow:
Bacteria were cultured, centrifuged, and washed before being used for the synthesis of N-TiO2-HA. The synthesized N-TiO2-HA were then calcined in air or argon atmosphere to form P-TiO2-HS or N-TiO2-C-HS, respectively. These were further decorated with MIL-101(Fe) or Pt for photocatalytic and electrocatalytic applications.
5:Data Analysis Methods:
The photocatalytic and electrocatalytic activities were evaluated through photodegradation of rhodamine B and ciprofloxacin, and electrocatalytic oxidation of methanol, respectively.
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Thermo ESCALAB 250XI
ESCALAB 250XI
Thermo
X-ray photoelectron spectroscopy
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Lambda 650 UV/vis spectrophotometer
650
Lambda
UV?visible diffuse re?ection spectra measurement
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Hitachi SU8010
SU8010
Hitachi
Scanning electron microscopy imaging
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Bruker D8 Advance
D8 Advance
Bruker
X-ray diffraction measurement
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Titan G260-300
G260-300
Titan
Transmission electron microscopy imaging
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Chenhua CHI660E
CHI660E
Chenhua
Electrochemical workstation
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