Oprea Corneliu I, Panait Petre, Essam Zahraa M, Abd El-Aal Reda M, Gîrțu Mihai A
Department of Physics and Electronics, Ovidius University of Constanța, 900527 Constanța, Romania.
Doctoral School, Faculty of Physics, University of Bucharest, 077125 Bucharest, Romania.
Nanomaterials (Basel). 2020 Apr 2;10(4):662. doi: 10.3390/nano10040662.
We report density functional theory (DFT) calculations of three newly synthesized oligomethine cyanine-based dyes as potential TiO-sensitizers in dye-sensitized solar cells. The three dyes have π-symmetry and the same acceptor side, terminating in the carboxylic anchor, but they differ through the π-bridge and the donor groups. We perform DFT and time-dependent DFT studies and present the electronic structure and optical properties of the dyes alone as well as adsorbed to the TiO nanocluster, to provide some predictions on the photovoltaic performance of the system. We analyze theoretically the factors that can influence the short circuit current and the open circuit voltage of the dye-sensitized solar cells. We examine the matching of the absorption spectra of the dye and dye-nanocluster system with the solar irradiation spectrum. We display the energy level diagrams and discuss the alignment between the excited state of the dyes and the conduction band edge of the oxide as well as between the redox level of the electrolyte and the ground state of the dyes. We determine the electron density of the key molecular orbitals and analyze comparatively the electron transfer from the dye to the semiconducting substrate. To put our findings in the right perspective we compare the results of our calculations with those obtained for a coumarin-based dye used in fabricating and testing actual devices, for which experimental data regarding the photovoltaic performance are available.
我们报告了对三种新合成的基于低聚次甲基菁的染料进行的密度泛函理论(DFT)计算,这些染料作为染料敏化太阳能电池中潜在的TiO敏化剂。这三种染料具有π对称性且受体端相同,以羧基锚定基团结尾,但它们在π桥和供体基团方面存在差异。我们进行了DFT和含时DFT研究,并给出了染料单独以及吸附到TiO纳米团簇上时的电子结构和光学性质,以对该体系的光伏性能提供一些预测。我们从理论上分析了可能影响染料敏化太阳能电池短路电流和开路电压的因素。我们研究了染料及染料 - 纳米团簇体系的吸收光谱与太阳辐射光谱的匹配情况。我们展示了能级图,并讨论了染料的激发态与氧化物导带边缘之间以及电解质的氧化还原能级与染料基态之间的能级对齐情况。我们确定了关键分子轨道的电子密度,并比较分析了从染料到半导体基底的电子转移。为了正确看待我们的研究结果,我们将计算结果与用于制造和测试实际器件的基于香豆素的染料所获得的结果进行了比较,对于该香豆素染料,有关于光伏性能的实验数据。