研究目的
合成具有大比表面积的氮空位修饰石墨相氮化碳(g-C3N4),并研究其在可见光下的光催化产氢活性。
研究成果
氮空位修饰的g-C3N4表现出增强的可见光吸收能力、更大的比表面积以及更高的电荷分离效率,从而显著提升了光催化产氢性能和稳定性。该研究为开发高效无金属光催化剂提供了新思路。
研究不足
该研究聚焦于氮空位修饰的g-C3N4的合成及其光催化性能,但未探讨该合成方法的可扩展性或大规模生产的经济可行性。
1:实验设计与方法选择:
通过尿素二次热处理合成含氮空位的g-C3N4。
2:样品选择与数据来源:
以尿素为前驱体制备g-C3N4。
3:实验仪器与材料清单:
仪器包括XRD、FTIR、XPS、EPR、SEM、TEM、DRS和PL;材料包括尿素和陶瓷坩埚。
4:实验步骤与操作流程:
将尿素加热至550°C保持2小时制得g-C3N4,随后在N2氛围下650°C二次热处理引入氮空位。
5:数据分析方法:
通过可见光下H2析出速率评估光催化活性。
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X-ray powder diffractometer
Bruker D8 Advance
Bruker
Measuring the X-ray diffraction patterns of samples.
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Fourier transform infrared spectroscopy
Agilent Cary 5000 spectrum 100
Agilent
Collecting FTIR spectra of samples.
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PerkinElmer series II CHNS/O analyzer
2400
PerkinElmer
Elemental analysis for carbon and nitrogen contents.
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X-ray photoelectron spectroscopy
Thermo Fisher Scientific Escalab 250
Thermo Fisher Scientific
Detecting XPS spectra of samples.
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Electron paramagnetic resonance spectrometer
Bruker EMX-10/12
Bruker
Measuring EPR spectra of samples.
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Scanning electron microscope
HITACHI SU8010
HITACHI
Examining the morphology of samples.
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Transmission electron microscopy
JEM-2100F
JEOL
Examining the microtopography of samples.
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UV–vis diffuse reflectance spectra
Agilent Cary 5000 UV–vis spectrometer
Agilent
Recording DRS of samples.
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Photoluminescence spectra
Agilent Cary Eclipse spectrometer
Agilent
Measuring PL spectra of samples.
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Quantachrome Autosorb-IQ2-MP analyzer
Quantachrome
Measuring BET surface area of samples.
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Chenhua CHI760 electrochemical station
Chenhua
Detecting transient photocurrent properties.
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Gas chromatography
GC7920
CEAULight
Analyzing the product of photocatalytic H2 evolution.
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