增加太阳能驱动的化学转换通过表面诱导的烯聚合在染料敏感的光电极
Didjay F Bruggeman1, Remko J Detz2, Simon Mathew1
1Homogeneous, Supramolecular and Bioinspired Catalysis, van 't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098 XH, Amsterdam, The Netherlands.
概括
基烯二胺 (BPTI) 染料聚合显著影响光电化学装置的性能. 抑制BPTI-B染料中的聚合降低了性能,同时使BPTI-A染料中的聚合增强了光电流和太阳能燃料的生产.
科学领域:
- 材料科学 材料科学 材料科学
- 摄影化学的使用
- 电化学 电化学 电化学
背景情况:
- 光电化学装置中的染料聚合会影响电荷分离和光收获.
- 控制分子自我组装对于优化设备效率至关重要.
研究的目的:
- 为了研究氏烯二胺 (BPTI) 染料聚合对光电化学装置性能的影响.
- 为了比较BPTI染料的性能与促进或抑制聚合的不同化物替代剂 (基与基) 的性能.
主要方法:
- 使用基 (BPTI-A) 和基 (BPTI-B) 胺基替代物的BPTI染料的合成.
- 染料的吸附在中孔性SnO2.2上.
- 用于Br2生产和H2生成的染料敏感太阳能电池 (DSSC) 和染料敏感光电化学电池 (DSPEC) 的制造和测试.
主要成果:
- 与BPTI-B.相比,聚合物的BPTI-A显示对SnO2的染料负载是BPTI-A的两倍.
- 基于BPTI-A的光电极致使光电流和Br2生产提高了五倍.
- 在BPTI-A中聚合现象 (J和H聚合) 改善了光采集和电荷分离.
结论:
- 通过分子设计利用染料聚合是一种可行的策略,可以增强光采集和电荷分离特性.
- 在BPTI染料中的聚合控制直接提高了用于太阳能燃料生产的染料敏感光电化学设备的性能.
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