School of Life Science and Technology, Changchun University of Science and Technology, Changchun 130022, P.R. China.
Photochem Photobiol Sci. 2019 Nov 6;18(11):2766-2772. doi: 10.1039/c9pp00218a.
By using density functional theory and time-dependent density functional theory, the geometrical, electronic and photophysical properties of six complexes with two ppy-type ligands and one acetylacetone anion around the Ir center have been explored. The lowest energy absorption wavelengths are located at 414 nm for 1, 434 nm for 2, 434 nm for 3, 421 nm for 4, 436 nm for 5, and 425 nm for 6, respectively. The lowest energy emissions of these complexes are localized at 617, 492, 633, 634, 491 and 491 nm, respectively, for complexes 1-6, simulated in CH2Cl2 medium at the M062X level. The calculated lowest lying absorption wavelength and the lowest energy emission wavelength for complex 3 are very close to the available experimental values. The position and number of the incorporated electron-withdrawing fluorine substituents have some effect on the electronic and photophysical properties of these studied complexes.
利用密度泛函理论和含时密度泛函理论,研究了 Ir 中心周围具有两个 ppy 配体和一个乙酰丙酮阴离子的六个配合物的几何、电子和光物理性质。最低能量吸收波长分别为 1 为 414nm、2 为 434nm、3 为 434nm、4 为 421nm、5 为 436nm 和 6 为 425nm。这些配合物的最低能量发射分别位于 617nm、492nm、633nm、634nm、491nm 和 491nm,分别为配合物 1-6,在 M062X 水平下模拟在 CH2Cl2 介质中。配合物 3 的计算得到的最低吸收波长和最低能量发射波长与可用的实验值非常接近。所研究的配合物的电子和光物理性质受掺入的吸电子氟取代基的位置和数量的影响。