Excited-State Hydrogen Bonding Dynamics of Hydrogen-Bonded Clusters Formed by of Coumarin Derivatives in Aqueous Solution: A Time-Dependent Density Functional Theory Study

被引:2
|
作者
Zhang, Mingzhen [1 ]
Zhao, Changxin [1 ]
Wang, Yi [1 ]
机构
[1] Dalian Polytech Univ, Sch Biol Engn, Dalian 116034, Peoples R China
关键词
Excited state; Hydrogen bond dynamics; INTRAMOLECULAR CHARGE-TRANSFER; SINGLET N; PI-ASTERISK; ELECTRON-TRANSFER; FLUORESCENCE; WATER; COMPLEXES; PHOTOCHEMISTRY; SOLVATION; SOLVENTS;
D O I
10.1007/s10876-012-0466-y
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The time-dependent density functional theory and the density functional theory are used to investigate the nature of hydrogen bonds formed by the derivative of the coumarin (TFKC) and the water molecules. The ground-state geometry optimizations, electronic excited energies and corresponding oscillation strengths for the TFKC monomer, the hydrogen-bonded TFKC-Water (HBA) dimer, TFKC-Water (HBB) dimer and TFKC-2Water complex are calculated. We find that, upon photoexcitation, the weaker hydrogen bond in the ground state will be affected by the relatively large impact for TFKC in the water. For better understanding the properties of the hydrogen bonds in the excited states, the frontier molecular orbitals of the S0 and S1 states are shown, and we find the obvious electron density transitions form the water molecules to the TFKC monomer. The electron transfer is expected to be the reason the hydrogen bond dynamics happens.
引用
收藏
页码:535 / 544
页数:10
相关论文
共 50 条
  • [1] Excited-State Hydrogen Bonding Dynamics of Hydrogen-Bonded Clusters Formed by of Coumarin Derivatives in Aqueous Solution: A Time-Dependent Density Functional Theory Study
    Mingzhen Zhang
    Changxin Zhao
    Yi Wang
    Journal of Cluster Science, 2012, 23 : 535 - 544
  • [2] TIME-DEPENDENT DENSITY FUNCTIONAL THEORY STUDY ON THE ELECTRONIC EXCITED-STATE HYDROGEN BONDING DYNAMICS OF METHYL ACETATE IN AQUEOUS SOLUTION
    Tan, Jiao-Jie
    Hao, Ce
    Wei, Ning-Ning
    Zhang, Ming-Xing
    Dai, Xi-Yang
    JOURNAL OF THEORETICAL & COMPUTATIONAL CHEMISTRY, 2011, 10 (03): : 393 - 400
  • [3] Time-Dependent Density Functional Theory Study on the Electronic Excited-State Geometric Structure, Infrared Spectra, and Hydrogen Bonding of a Doubly Hydrogen-Bonded Complex
    Liu, Yufang
    Ding, Junxia
    Liu, Ruiqiong
    Shi, Deheng
    Sun, Jinfeng
    JOURNAL OF COMPUTATIONAL CHEMISTRY, 2009, 30 (16) : 2723 - 2727
  • [4] Time-dependent density functional theory study on excited-state spectral and dynamic properties of hydrogen-bonded complexes formed by DMACA and water
    Yang, Dapeng
    Zheng, Rui
    Wang, Yusheng
    Lv, Jian
    RSC ADVANCES, 2016, 6 (82) : 79196 - 79203
  • [5] Time-Dependent Density Functional Theory Study on Electronic Excited-State Hydrogen Bonding of Benzonitrile in Methanol Solution
    Yang, Dapeng
    Qi, Ruiquan
    JOURNAL OF CLUSTER SCIENCE, 2014, 25 (04) : 1019 - 1028
  • [6] Time-Dependent Density Functional Theory Study on Electronic Excited-State Hydrogen Bonding of Benzonitrile in Methanol Solution
    Dapeng Yang
    Ruiquan Qi
    Journal of Cluster Science, 2014, 25 : 1019 - 1028
  • [7] Time-Dependent Density Functional Theory Study on Excited-State Hydrogen Bonding Dynamics of Acetic Acid Hydrates
    Mingxian Ma
    Dapeng Yang
    Journal of Cluster Science, 2012, 23 : 155 - 164
  • [8] Time-Dependent Density Functional Theory Study on Excited-State Hydrogen Bonding Dynamics of Acetic Acid Hydrates
    Ma, Mingxian
    Yang, Dapeng
    JOURNAL OF CLUSTER SCIENCE, 2012, 23 (01) : 155 - 164
  • [9] Time-dependent density functional theory study on the excited-state hydrogen-bonding characteristics of polyaniline in aqueous environment
    Zhang, Yahong
    Duan, Yuping
    Liu, Jin
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2017, 171 : 305 - 310
  • [10] Time-dependent density functional theory study on the electronic excited-state hydrogen bonding dynamics of BHC-nicotinamide in MeOH solution
    Cheng, Jinling
    Liu, Di
    CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE, 2013, 91 (04): : 248 - 254