研究目的
Investigating the therapeutic effects of a specific herbal medicine on a particular disease.
研究成果
The study demonstrated an effective approach to incorporate oxygen vacancies under aerobic atmosphere through generated interfacial lattice strain by oxide coating, significantly enhancing the pseudocapacitive charge storage properties of electrode materials. This work provides new insights for the incorporation of oxygen vacancies via mechanical manipulation for electrode materials, endowing batteries with greatly enhanced capacitive charge storage for high-power applications.
研究不足
The study focuses on TiO2 as a model system, and the applicability of the strategy to other materials needs further investigation. The depth of generated oxygen vacancies might be limited to several atomic layers under interfacial strain.
1:Experimental Design and Method Selection:
The study involved the synthesis of titanium oxide hydrate (H-TiO2) nanofibers through a hydrothermal method, followed by surface coating with oxides and thermal treatment at 300 °C in air.
2:Sample Selection and Data Sources:
The samples included bare and metal-oxide-coated TiO2, characterized using SEM, TEM, HRTEM, STEM, XPS, XRD, XANES, UV–vis, EPR, and four-point probe resistivity measurements.
3:List of Experimental Equipment and Materials:
Equipment used included SEM, TEM, HRTEM, STEM, XPS, XRD, XANES, UV–vis, EPR, and four-point probe resistivity measurement devices. Materials included titanium oxide hydrate (H-TiO2) nanofibers and various metal oxides for coating.
4:Experimental Procedures and Operational Workflow:
The procedure involved the synthesis of H-TiO2 nanofibers, coating with metal oxides, thermal treatment, and comprehensive characterization.
5:Data Analysis Methods:
Data analysis involved geometrical phase analysis (GPA) and density functional theory (DFT) simulations to verify the formation energy of oxygen vacancies under external strain.
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SEM
Characterization of sample morphology
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TEM
High-resolution imaging of sample structure
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HRTEM
High-resolution imaging of sample structure at atomic level
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STEM
Elemental mapping of sample composition
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XPS
Analysis of surface chemical composition
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XRD
Determination of crystal structure
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XANES
Investigation of local environment of elements
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UV–vis
Optical absorption analysis
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EPR
Characterization of magnetic properties of defect centers
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Four-point probe resistivity measurement device
Measurement of electrical conductivity
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