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Enhanced Charge Separation and FRET at Heterojunctions between Semiconductor Nanoparticles and Conducting Polymer Nanofibers for Efficient Solar Light Harvesting

机译:半导体纳米粒子和导电聚合物纳米纤维之间异质结处的电荷分离和FRET增强可有效收集太阳光

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摘要

Energy harvesting from solar light employing nanostructured materials offer an economic way to resolve energy and environmental issues. We have developed an efficient light harvesting heterostructure based on poly(diphenylbutadiyne) (PDPB) nanofibers and ZnO nanoparticles (NPs) via a solution phase synthetic route. ZnO NPs (~20 nm) were homogeneously loaded onto the PDPB nanofibers as evident from several analytical and spectroscopic techniques. The photoinduced electron transfer from PDPB nanofibers to ZnO NPs has been confirmed by steady state and picosecond-resolved photoluminescence studies. The co-sensitization for multiple photon harvesting (with different energies) at the heterojunction has been achieved via a systematic extension of conjugation from monomeric to polymeric diphenyl butadiyne moiety in the proximity of the ZnO NPs. On the other hand, energy transfer from the surface defects of ZnO NPs (~5 nm) to PDPB nanofibers through Förster Resonance Energy Transfer (FRET) confirms the close proximity with molecular resolution. The manifestation of efficient charge separation has been realized with ~5 fold increase in photocatalytic degradation of organic pollutants in comparison to polymer nanofibers counterpart under visible light irradiation. Our results provide a novel approach for the development of nanoheterojunctions for efficient light harvesting which will be helpful in designing future solar devices.
机译:采用纳米结构材料从太阳光中收集能量提供了解决能源和环境问题的经济途径。我们已经通过溶液相合成路线开发了一种基于聚二苯基丁二炔(PDPB)纳米纤维和ZnO纳米颗粒(NPs)的高效光收集异质结构。 ZnO NPs(〜20nm)被均匀地装载到PDPB纳米纤维上,这可以从几种分析和光谱技术中看出。从PDPB纳米纤维到ZnO NPs的光诱导电子转移已通过稳态和皮秒分辨光致发光研究证实。通过从ZnO NPs附近的单体到聚合物二苯丁二炔部分的共轭扩展,已经实现了异质结处多光子收集(具有不同能量)的共敏化。另一方面,通过Förster共振能量转移(FRET)从ZnO NPs(〜5 nm)的表面缺陷到PDPB纳米纤维的能量转移证实了与分子分辨率的紧密接近。与可见光照射下的聚合物纳米纤维相比,有机污染物的光催化降解增加了约5倍,从而实现了有效的电荷分离。我们的结果为开发用于高效收集光的纳米异质结提供了一种新颖的方法,这将有助于设计未来的太阳能设备。

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