Facultad de Ingeniería Mochis, Universidad Autónoma de Sinaloa, Prol. Ángel Flores y Fuente de Poseidón, S/N, Los Mochis 81223, Sinaloa, Mexico.
Laboratorio Virtual NANOCOSMOS, Departamento de Medio Ambiente y Energía, Centro de investigación en Materiales Avanzados, Miguel de Cervantes 120, Complejo Industrial Chihuahua, Chihuahua, Chihuahua 31136, Mexico.
Molecules. 2019 Oct 29;24(21):3897. doi: 10.3390/molecules24213897.
Ten molecules were theoretically calculated and studied through density functional theory with the M06 density functional and the 6-31G(d) basis set. The molecular systems have potential applications as sensitizers for dye-sensitized solar cells. Three molecules were taken from the literature, and seven are proposals inspired in the above, including the azomethine group in the π-bridge expecting a better charge transfer. These molecular structures are composed of triphenylamine (donor part); different combinations of azomethine, thiophene, and benzene derivatives (π-bridge); and cyanoacrylic acid (acceptor part). This study focused on the effect that the azomethine group caused on the π-bridge. Ground-state geometry optimization, the highest occupied molecular orbital, the lowest unoccupied molecular orbital, and their energy levels were obtained and analyzed. Absorption wavelengths, oscillator strengths, and electron transitions were obtained via time-dependent density functional theory using the M06-2X density functional and the 6-31G(d) basis set. The free energy of electron injection (ΔG) was calculated and analyzed. As an important part of this study, chemical reactivity parameters are discussed, such as chemical hardness, electrodonating power, electroaccepting power, and electrophilicity index. In conclusion, the inclusion of azomethine in the π-bridge improved the charge transfer and the electronic properties of triphenylamine-based dyes.
通过密度泛函理论(M06 密度泛函和 6-31G(d)基组)对 10 个分子进行了理论计算和研究。这些分子体系具有作为染料敏化太阳能电池敏化剂的潜在应用。从文献中选取了 3 个分子,另外 7 个是受上述启发的建议,包括在π-桥中引入亚甲胺基团,以期望更好的电荷转移。这些分子结构由三苯胺(供体部分)组成;不同的亚甲胺、噻吩和苯衍生物(π-桥)的组合;以及氰基丙烯酸(受体部分)。本研究重点研究了亚甲胺基团对π-桥的影响。得到并分析了基态几何优化、最高占据分子轨道、最低未占据分子轨道及其能级。通过使用 M06-2X 密度泛函和 6-31G(d)基组的时间相关密度泛函理论,获得了吸收波长、振子强度和电子跃迁。计算并分析了电子注入的自由能(ΔG)。作为本研究的重要部分,讨论了化学反应性参数,如化学硬度、给电子能力、吸电子能力和电亲性指数。总之,在π-桥中引入亚甲胺基团提高了基于三苯胺的染料的电荷转移和电子性质。