Molecular Electronic and Optoelectronic Device Laboratory, Physics Department, JNV University, Jodhpur 342005, India.
ACS Appl Mater Interfaces. 2009 Jul;1(7):1370-4. doi: 10.1021/am900244y.
The effect of the incorporation of a low-band-gap small-molecule BTD-TNP on the photovoltaic properties of vinylene copolymer P:PCBM bulk heterojunction solar cells has been investigated. The introduction of this small molecule increases both the short-circuit photocurrent and the overall power conversion efficiency of the photovoltaic device. The incident photon-to-current efficiency (IPCE) of the device based on P:PCBM:BTD-TNP shows two distinct bands, which correspond to the absorption bands of P:PCBM and BTD-TNP. Furthermore, it was found that the IPCE of the device has also been enhanced even at the wavelengths corresponding to the absorption band of P:PCBM, when the thermally annealed blend was used in the device. This indicates that the excitons that are generated in copolymer P are dissociated into charge carriers more effectively in the presence of the BTD-TNP small molecule at the copolymer P:PCBM interface by energy transfer from P to the small molecule. Therefore, we conclude that the BTD-TNP small molecule acts as light-harvesting photosensitizer and also provides a path for the generated exciton in copolymer P toward the P:PCBM interface for efficient charge separation. The overall power conversion efficiency for the P:PCBM:BTD-TNP photovoltaic device is about 1.27%, which has been further enhanced up to 2.6%, when a thermally annealed blend layer is used.
已研究了将低带隙小分子 BTD-TNP 掺入乙烯基共聚物 P:PCBM 体异质结太阳能电池对光伏性能的影响。这种小分子的引入提高了光伏器件的短路光电流和整体功率转换效率。基于 P:PCBM:BTD-TNP 的器件的入射光子电流效率(IPCE)显示出两个明显的波段,分别对应于 P:PCBM 和 BTD-TNP 的吸收带。此外,当在器件中使用热退火共混物时,还发现即使在对应于 P:PCBM 吸收带的波长处,器件的 IPCE 也得到了增强。这表明,在共聚物 P:PCBM 界面处,BTD-TNP 小分子通过从 P 到小分子的能量转移,将在共聚物 P 中产生的激子更有效地解离成载流子。因此,我们得出结论,BTD-TNP 小分子充当光收集敏化剂,并为共聚物 P 中产生的激子提供了一条通向 P:PCBM 界面的途径,以实现有效的电荷分离。当使用热退火共混物层时,P:PCBM:BTD-TNP 光伏器件的整体功率转换效率约为 1.27%,进一步提高到 2.6%。