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Improving Polymer/Nanocrystal Hybrid Solar Cell Performance via Tuning Ligand Orientation at CdSe Quantum Dot Surface

机译:通过调整CdSe量子点表面的配体取向提高聚合物/纳米晶体混合太阳能电池的性能

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摘要

Achieving superior solar cell performance based on the colloidal nanocrystals remains challenging due to their complex surface composition. Much attention has been devoted to the development of effective surface modification Strategies to enhance electronic coupling between the nanocrystals to promote charge carrier transport. Herein, we aim to attach benzenedithiol ligands onto the surface of CdSe nanocrystals in the "face-on" geometry to minimize the nanocrystal-nanocrystal or polymer-nanocrystal distance. Furthermore, the "electroactive" jr-orbitals of the benzenedithiol are expected to further enhance the electronic coupling, which facilitates charge carrier dissociation and transport. The electron mobility of CdSe QD films was improved 20 times by tuning the ligand orientation, and high performance poly[2,6-(4,4-bis(2-ethylhexyl)-4H-cyclopentat2,l-b;3,4-b']-dithiophene)-alt-4,7-(2,1,3- benzothiadiazole)] (PCPDTBT)iCdSe nanocrystal hybrid solar cells were also achieved, showing a highest power conversion efficiency of 4.18%. This research could open up a new pathway to improve further the performance of colloidal nanocrystal based solar cells.
机译:由于其复杂的表面组成,基于胶体纳米晶体获得优异的太阳能电池性能仍然具有挑战性。人们已经将许多注意力集中在有效表面改性策略的开发上,以增强纳米晶体之间的电子耦合,从而促进电荷载流子的传输。在本文中,我们旨在将苯二硫醇配体以“面对面”的几何形状连接到CdSe纳米晶体的表面上,以最小化纳米晶体-纳米晶体或聚合物-纳米晶体的距离。此外,期望苯二硫醇的“电活性” jr轨道进一步增强电子偶联,这有利于电荷载流子的解离和运输。通过调节配体的取向,CdSe QD薄膜的电子迁移率提高了20倍,并且高性能的聚[2,6-(4,4-双(2-乙基己基)-4H-环戊基2,lb; 3,4-b'还获得了]-二噻吩)-alt-4,7-(2,1,3-苯并噻二唑)(PCPDTBT)iCdSe纳米晶杂化太阳能电池,其最高功率转换效率为4.18%。这项研究可以开辟一条新途径,以进一步提高基于胶体纳米晶体的太阳能电池的性能。

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