Kathiravan Arunkumar, Srinivasan Venkatesan, Khamrang Themmila, Velusamy Marappan, Jaccob Madhavan, Pavithra Nagaraj, Anandan Sambandam, Velappan Kandavelu
National Centre for Ultrafast Processes, University of Madras, Taramani Campus, Chennai - 600 113, Tamil Nadu, India.
Department of Chemistry, North Eastern Hill University, Shillong 793 022, Meghalaya, India.
Phys Chem Chem Phys. 2017 Jan 25;19(4):3125-3135. doi: 10.1039/c6cp08180k.
Pyrene derivatives show immense potential as sensitizers for dye-sensitized solar cells (DSCs). Therefore, this work focuses on the impact of π-spacers on the photophysical, electrochemical and photovoltaic properties of pyrene based D-π-A dyes, since the insertion of π-spacers is one of the doable strategies to improve the light harvesting properties of the dye. In this respect, three new pyrene based D-π-A dyes have been synthesized and characterized by H, C NMR, and elemental analyses and EI-MS spectrometry. The selected π-spacers are benzene, thiophene and furan. Compared with a benzene spacer, the introduction of a heterocyclic ring spacer reduces the band gap of the dye and brings about the broadening of the absorption spectra to the longer wavelength region through intramolecular charge-transfer (ICT). Combined experimental and theoretical studies were performed to investigate the ICT process involved in the pyrene derivatives. The profound solvatochromism with increased nonradiative rate constants (k) has been construed in terms of ICT from the pyrene core to rhodanine-3-acetic acid via conjugated π-spacers. Electrochemical data also reveal that the HOMO and LUMO energy levels are fine-tuned by incorporating different π-spacers between pyrene and rhodanine-3-acetic acid. On the basis of the optimized DSC test conditions, the best performance was found for PBRA, in which a benzene group is the conjugated π-spacer. The divergence in the photovoltaic behaviors of these dyes was further explicated by femtosecond fluorescence and electrochemical impedance spectroscopy.
芘衍生物作为染料敏化太阳能电池(DSC)的敏化剂显示出巨大的潜力。因此,这项工作聚焦于π-间隔基对基于芘的D-π-A染料的光物理、电化学和光伏性质的影响,因为插入π-间隔基是改善染料光捕获性质的可行策略之一。在这方面,已经合成了三种基于芘的新型D-π-A染料,并通过氢谱、碳谱、元素分析和电子轰击质谱进行了表征。所选用的π-间隔基为苯、噻吩和呋喃。与苯间隔基相比,引入杂环间隔基会降低染料的带隙,并通过分子内电荷转移(ICT)使吸收光谱向更长波长区域展宽。进行了实验和理论相结合的研究,以探究芘衍生物中涉及的ICT过程。随着非辐射速率常数(k)增加而出现的显著溶剂化显色现象,已根据通过共轭π-间隔基从芘核到罗丹宁-3-乙酸的ICT来解释。电化学数据还表明,通过在芘和罗丹宁-3-乙酸之间引入不同的π-间隔基,可以微调最高已占分子轨道(HOMO)和最低未占分子轨道(LUMO)的能级。在优化的DSC测试条件下,发现以苯环作为共轭π-间隔基的PBRA表现最佳。通过飞秒荧光和电化学阻抗谱进一步解释了这些染料光伏行为的差异。