研究目的
Investigating the photoelectrochemical water splitting performance and stability of Ta3N5 nanotubes decorated with Co(OH)x and Co–Pi co-catalysts.
研究成果
Ta3N5 NTs with Co(OH)x/Co–Pi double co-catalyst loading showed improved PEC performance and stability. However, the unique mesoporous structure of Ta3N5 NTs presents challenges for uniform co-catalyst coverage, indicating the need for better deposition methods to further enhance stability.
研究不足
The mesoporous structure of Ta3N5 NTs makes it difficult to achieve full coverage by co-catalysts, leading to remaining photocorrosion. The stability of high PEC performance is challenging to maintain.
1:Experimental Design and Method Selection:
The study involved the synthesis of Ta3N5 nanotubes through a two-step anodization process followed by nitridation. Co(OH)x and Co–Pi co-catalysts were electrodeposited to enhance PEC performance.
2:Sample Selection and Data Sources:
Ta foil was used as the substrate for Ta2O5 NTs growth, which were then converted to Ta3N5 NTs.
3:List of Experimental Equipment and Materials:
SEM, TEM, XRD, XPS for characterization; Gamry Reference 3000 potentiostat for PEC measurements.
4:Experimental Procedures and Operational Workflow:
Ta2O5 NTs were grown, nitrided to Ta3N5 NTs, decorated with co-catalysts, and characterized before PEC testing.
5:Data Analysis Methods:
Photocurrent density and IPCE were measured to evaluate PEC performance.
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XPS
Kratos Axis UltraDLD
Kratos
Confirmation of co-catalysts on the surface of the nanotubes
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Ta foil
0.25 mm thick
Sigma-Aldrich
Substrate for the growth of Ta2O5 NTs
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SEM
FEI 650 NOVA NanoSEM
FEI
Characterization of nanotubes
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TEM
FEI Titan G2 60-300
FEI
Characterization of nanotubes
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XRD
Rigaku MiniFlex 600
Rigaku
Crystal structure analysis
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Potentiostat
Gamry Reference 3000
Gamry
PEC measurements
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Solar simulator
Newport Oriel? LCS-100
Newport
Simulated solar light for PEC measurements
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