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Theoretical Analysis on Heteroleptic Cu(I)-Based Complexes for Dye-Sensitized Solar Cells: Effect of Anchors on Electronic Structure Spectrum Excitation and Intramolecular and Interfacial Electron Transfer

机译:基于染料敏化太阳能电池的杂化Cu(I)的理论分析:锚对电子结构光谱激发和分子内和界面电子转移的影响

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摘要

Two groups of heteroleptic Cu(I)-based dyes were designed and theoretically investigated by density functional theory (DFT) and time-dependent DFT (TD-DFT) methods. Different anchors were integrated into the dye skeleton to shed light on how the type of anchor influenced the electronic structure, absorption spectrum, electron excitation, and intramolecular and interfacial electron transfer of dyes. The results indicated that, compared with other dyes, the dyes with cyanoacrylic acid and nitric acid exhibited more appropriate electron distributions in frontier molecular orbitals (FMOs), lower HOMO (the highest occupied molecular orbital) –LUMO (the lowest unoccupied molecular orbital) energy gaps, broader absorption spectral ranges as well as improved spectral characteristics in the near-infrared region and better intramolecular electron transfer (IET) characteristics with more electrons transferred to longer distances, but smaller orbital overlap. Among all the studied Cu(I)-based dyes, B1 and P1 (with cyanoacrylic acid anchoring group) exhibited the best interface electronic structure parameters with a relatively short electron injection time (τ ) and large dipole moment (μ ), which would have a positive effect on the open-circuit photovoltage (V ) and short-circuit current density (J ), resulting in high power conversion efficiency (PCE) of dye-sensitized solar cells (DSSCs). Our findings are expected to provide a new insight into the designing and screening of high-performance dyes for DSSCs.
机译:通过密度官能理论(DFT)和时间依赖性DFT(TD-DFT)方法设计和理论上研究了两组缺陷染料。将不同的锚综合成染料骨架以脱光,以锚的类型如何影响电子结构,吸收光谱,电子激发和染料的分子内和界面电子转移。结果表明,与其他染料相比,用氰基丙烯酸和硝酸的染料在前部分子轨道(FMOS)中表现出更合适的电子分布,下均匀(最高占用的分子轨道) - 隆(最低的未占用的分子轨道)能量间隙,更广泛的吸收光谱范围以及近红外区域的频谱特性以及更好的分子内电子转移(IET)特性,具有更多电子转移到更长的距离,但轨道重叠较小。在所有研究的Cu(I)的染料中,B1和P1(用氰基丙烯酸锚固组)表现出具有相对短的电子喷射时间(τ)和大的偶极矩(μ)的最佳界面电子结构参数。对开路光伏(V)和短路电流密度(j)的积极影响,导致染料敏化太阳能电池(DSSCs)的高功率转换效率(PCE)。我们的调查结果预计将为DSSCS的高性能染料设计和筛选提供新的洞察力。

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