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不对称取代自由碱卟啉中的单光子和双光子吸收:密度泛函理论研究

One- and two-photon absorptions in asymmetrically substituted free-base porphyrins: a density functional theory study.

作者信息

Chandra Jha Prakash, Minaev Boris, Agren Hans

机构信息

Theoretical Chemistry, Royal Institute of Technology, AlbaNova, Stockholm, Sweden.

出版信息

J Chem Phys. 2008 Feb 21;128(7):074302. doi: 10.1063/1.2838776.

Abstract

Electronic spectra and structures of a new family of free-base porphyrin (H(2)P) derivatives with 4-(diphenylamino)stilbene (DPAS) or 4,4'-bis-(diphenylamino)stilbene (BDPAS) asymmetric substituents, recently synthesized and studied by Drobizhev et al. [J. Phys. Chem. B 110, 9802 (2006)] are investigated by density functional theory (DFT) using modern density functionals and the 6-31G* basis set. The time-dependent DFT technique is applied for calculations of one- and two-photon absorption spectra, electric and magnetic dipole moments, and for prediction of electronic circular dichroism for these chiral molecules. The four-band absorption spectrum of the H(2)P molecule (Q(x), Q(y), 0-0 and 1-0 bands) is enhanced in single-bond-linked DPAS. This enhancement is explained by hyperconjugation of the almost orthogonal pi systems and by small charge-transfer admixtures. The effect is much stronger for the double-bond- and triple-bond-linked DPAS and BDPAS substituents where absorption in the Q region transforms into a two-band spectrum. These molecules with ethenyl and ethynyl bonding of the porphyrin and donor substituent show very strong two-photon absorption in the near-infrared region. DFT calculations explain this by more efficient conjugation between the H(2)P and DPAS (BDPAS) chromophores, since they are almost coplanar: "Gerade" states of the H(2)P molecule occur in the Soret region and transform into charge-transfer states with nonzero transition moments. They are responsible for the strong two-photon absorption effects. Mixing of excitations in both chromophores explains the broadening of the Soret band. Though the calculated two-photon absorption cross sections are overestimated, the qualitative trends are reproduced and help understanding the whole genesis of spectra of these asymmetrically substituted H(2)P derivatives.

摘要

最近由德罗比热夫等人合成并研究的[《物理化学杂志B》110, 9802 (2006)]具有4-(二苯胺基)芪(DPAS)或4,4'-双(二苯胺基)芪(BDPAS)不对称取代基的新型游离碱卟啉(H₂P)衍生物的电子光谱和结构,采用现代密度泛函和6 - 31G*基组通过密度泛函理论(DFT)进行研究。含时DFT技术用于计算单光子和双光子吸收光谱、电偶极矩和磁偶极矩,并用于预测这些手性分子的电子圆二色性。H₂P分子的四带吸收光谱(Qₓ、Qᵧ、0 - 0和1 - 0带)在单键连接的DPAS中得到增强。这种增强是由几乎正交的π体系的超共轭和小的电荷转移混合作用来解释的。对于双键和三键连接的DPAS和BDPAS取代基,这种效应要强得多,其中Q区域的吸收转变为双带光谱。这些卟啉与供体取代基通过乙烯基和乙炔基键合的分子在近红外区域表现出非常强的双光子吸收。DFT计算通过H₂P和DPAS(BDPAS)发色团之间更有效的共轭来解释这一点,因为它们几乎共面:H₂P分子的“ gerade”态出现在Soret区域并转变为具有非零跃迁矩的电荷转移态。它们是强双光子吸收效应的原因。两个发色团中激发的混合解释了Soret带的展宽。尽管计算得到的双光子吸收截面被高估了,但定性趋势得以重现,并有助于理解这些不对称取代的H₂P衍生物光谱的整体成因。

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