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Theoretical study on the structures and electronic properties of oligo(p-phenylenevinylene) carboxylic acid and its derivatives: effects of spacer and anchor groups

机译:低聚对苯撑亚乙烯基羧酸及其衍生物的结构和电子性质的理论研究:间隔基和锚定基团的影响

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摘要

The structural parameters of oligo(p-phenylenevinylene)carboxylic acid (OPV3–COOH) and its derivatives were optimized using the density functionals B3LYP, M06, M06-HF, M06-2X and the MP2 method on 6-31G(d) basis set level. The results show that the structure from B3LYP calculation is more planar than from M06, M06-2X, M06-HF, and MP2, respectively. The structures of OPV3–COOH obtained from various methods were used to calculate the electronic properties by time-dependent density functional theory calculation with the TD-CAM-B3LYP/6-311G(d,p) including conductor polarizable continuum model solvation to compare with the experimental absorption bands of this molecule. The excitation energies from the coplanar structure using M06-2X/6-31G(d) (406 nm) are closer to the experimental absorption data (430 nm) than the data from geometries optimized by M06-HF/6-31G(d) (362 nm) and MP/6-31G(d) (382 nm). Therefore, in this study, the M06-2X/6-31G(d) method was selected to investigate the effects of spacers for the structures and the electronic properties of OPV3–COOH and some derivatives. Spacer groups such as thiophene, dithiophene and vinylenethiophene linking between chromophore and the cyanoacrylic acid (–CNCOOH) anchor group can increase the electron transfer and expand the π-conjugated system to shift the absorption band into the visible light region. The more extended electron transfer and the red-shift of the absorption band for OPV3–COOH and OPV3–CNCOOH derivatives are desirable for absorbing sunlight and good employing as photo-sensitizer in dye-sensitized solar cell. Thiophene (OPV3–Th–CNCOOH), dithiophene (OPV3–diTh–CNCOOH) and vinylenethiophene (OPV3–viTh–CNCOOH) as spacer lead to the expansion of the π-conjugated system and to bathochromically shifted absorption spectra. Therefore, the modeling of side chain, spacer and anchor group in this study suggests new sensitizer compounds that enhance the efficiency of electron transfer and absorption of the sunlight for new synthetic materials.
机译:利用密度泛函B3LYP,M06,M06-HF,M06-2X和MP2方法在6-31G上优化了对(对亚苯基亚乙烯基)羧酸(OPV3-sub-COOH)及其衍生物的结构参数。 d)基础设定水平。结果表明,B3LYP计算得出的结构比M06,M06-2X,M06-HF和MP2的结构更平坦。通过时变密度泛函理论计算,采用TD-CAM-B3LYP / 6-311G(d,p)包括导体极化连续体模型,通过多种方法获得的OPV3 -COOH结构用于计算电子性能。溶剂化以与该分子的实验吸收带进行比较。使用M06-2X / 6-31G(d)(406 nm)从共面结构获得的激发能比通过M06-HF / 6-31G(d)优化的几何数据更接近实验吸收数据(430 nm) (362 nm)和MP / 6-31G(d)(382 nm)。因此,本研究选择了M06-2X / 6-31G(d)方法来研究间隔基对OPV3-COOH及其衍生物的结构和电子性能的影响。连接在生色团和氰基丙烯酸(–CNCOOH)锚基之间的噻吩,二噻吩和亚乙烯基噻吩等间隔基可以增加电子转移,并扩展π共轭体系,将吸收带移至可见光区域。 OPV3 -COOH和OPV3 -CNCOOH衍生物的电子传递和吸收带的红移更广,对于吸收日光是理想的,并且在染料敏化太阳能电池中很好地用作光敏剂。噻吩(OPV3 –Th–CNCOOH),二噻吩(OPV3 –diTh–CNCOOH)和亚乙烯基噻吩(OPV3 –viTh–CNCOOH)作为间隔基导致π共轭体系的扩展和红移的吸收光谱。因此,本研究中对侧链,间隔基和锚定基团的建模提出了新型敏化剂化合物,这些化合物可提高新型合成材料的电子转移效率和吸收太阳光的效率。

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