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Enhanced Photocatalytic Activity and Charge Carrier Dynamics of Hetero-Structured Organic Inorganic Nano-Photocatalysts

机译:杂结构有机无机纳米光催化剂的增强的光催化活性和电荷载体动力学

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P3HT-coupled CdS heterostructured nanophotocatalysts have been synthesized by an inexpensive and scalable chemical bath deposition approach followed by drop casting. The presence of amorphous regions corresponding to P3HT in addition to the lattice fringes [(002) and (101)] corresponding to hexagonal CdS in the HRTEM image confirm the coupling of P3HT onto CdS. The shift of pi* (C=C) and sigma* (C-C) peaks toward lower energy losses and prominent presence of sigma* (C-H) in the case of P3HT-CdS observed in electron energy loss spectrum implies the formation of heterostructured P3HT-CdS. It was further corroborated by the shifting of S 2p peaks toward higher binding energy (163.8 and 164.8 eV) in the XPS spectrum of P3HT-CdS. The current density recorded under illumination for the 0.2 wt % P3HT-CdS photoelectrode is 3 times higher than that of unmodified CdS and other loading concentration of P3HT coupled CdS photoelectrodes. The solar hydrogen generation studies show drastic enhancement in the hydrogen generation rate i.e. 4108 mu mol h(-1) g(-1) in the case of 0.2 wt % P3HT-CdS. The improvement in the photocatalytic activity of 0.2 wt % P3HT-CdS photocatalyst is ascribed to improved charge separation lead by the unison of shorter lifetime (tau(1) = 0.25 ns) of excitons, higher degree of band bending, and increased donor density as revealed by transient photoluminescence studies and Mott-Schottky analysis.
机译:P3HT偶联的CdS异质结构纳米光催化剂已经通过廉价且可扩展的化学浴沉积方法合成,然后进行滴铸。在HRTEM图像中,除了对应于六边形CdS的晶格条纹[(002)和(101)]外,还存在对应于P3HT的非晶区,这证实了P3HT与CdS的耦合。在电子能量损失谱中观察到的P3HT-CdS情况下,pi *(C = C)和sigma *(CC)的峰朝着更低的能量损失和sigma *(CH)的突出方向移动,这表明异质结构的P3HT- CdS。在P3HT-CdS的XPS光谱中,S 2p峰向更高的结合能(163.8和164.8 eV)移动,进一步证实了这一点。 0.2 wt%P3HT-CdS光电极在光照下记录的电流密度是未修饰的CdS和P3HT耦合CdS光电极的其他负载浓度的3倍。太阳能制氢研究表明,在0.2 wt%P3HT-CdS的情况下,制氢速率显着提高,即4108μmol h(-1)g(-1)。 0.2 wt%P3HT-CdS光催化剂的光催化活性的提高归因于激子寿命缩短(tau(1)= 0.25 ns),更高的能带弯曲度和更高的供体密度,从而改善了电荷分离。通过瞬态光致发光研究和Mott-Schottky分析发现。

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