超快速光谱揭示了通过碳化物光催化剂改善的电子转移级联
Kathryn L Corp1, Cody W Schlenker1
1Department of Chemistry, University of Washington , Seattle, Washington 98195, United States.
Journal of the American Chemical Society
|May 25, 2017
概括
化学剥离的碳化物增强了石墨碳化物 (g-C3N4) 的光催化活性,用于太阳能生成. 这种合作效应通过促进对可持续能源解决方案至关重要的电子转移来提高的演变速度.
科学领域:
- 材料科学
- 光催化
- 可再生能源
背景情况:
- 太阳能气发电是可持续能源的关键.
- 石墨碳化物 (g-C3N4) 是水分解的一个有前途的光催化剂.
- 了解g-C3N4电子转移动态对于提高其效率至关重要.
研究的目的:
- 研究g-C3N4光催化剂中的电子转移动态.
- 阐明除皮碳化物增强活性背后的机制.
- 制定设计规则以提高碳基光催化剂的性能.
主要方法:
- 可见和近红外的秒暂时吸收 (TA) 光谱.
- 使用散装g-C3N4和化学剥离碳化物制造复合光催化剂.
- 对光催化演变速率的测量
主要成果:
- 一种由g-C3N4和脱皮碳化物组成的复合物显示光催化活性几乎翻了一番 (2050至3810μmolh-1g-1).
- TA光谱显示从g-C3N4到脱皮碳化物的电子快速转移,接近扩散极限.
- 电子转移显著减少了g-C3N4中的光生成电子的衰变时间,从4.1ns降至660ps.
结论:
- 这种增强的活性来自于合作效应:在g-C3N4上产生电荷,然后将电子转移到脱皮的化碳中.
- 脱皮碳化物作为一个电子吸收器,提高电荷分离和光催化效率.
- 这项研究为控制先进的碳基光催化剂的电荷分离动态提供了关键的见解.
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