First singlet (n,π) excited state of hydrogen-bonded complexes between water and pyrimidine

被引:12
作者
Cai, ZL [1 ]
Reimers, JR [1 ]
机构
[1] Univ Sydney, Sch Chem, Sydney, NSW 2006, Australia
关键词
D O I
10.1021/jp048309i
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hydrogen bonds from water to excited-state formaldehyde and from water to excited-state pyridine have been shown to display novel motifs to traditional hydrogen bonds involving ground states, with, in particular for H2O:pyridine, strong interactions involving the electron-rich)T cloud dominating the (n,pi*) excited state. We investigate H2O:pyrimidine and various dihydrated species and reveal another motif, one in which the hydrogen bonding can dramatically alter the electronic structure of the excited state. Such effects are rare for ground-state interactions for which hydrogen bonding usually acts to merely perturb the electronic structure of the participating molecules. It arises as the (n,pi*) excitation of isolated pyrimidine is delocalized over both nitrocens but asymmetric hydrogen bonding causes it to localize on just the noninteracting atom. As a result, the excited-state hydrogen bond in H2O:pyrimidine is suprisingly very similar to the ground-state structure. These results lead to an improved understanding of the spectroscopy of pyrimidine in liquid water, and to the prediction that stable excited-state hydrogen bonds in H2O:pyrimidine should be observable, despite failure of experiments to actually do so. They also provide a simple model for the intricate control over primary charge separation in photosynthesis exerted by hydrogen bonding, and for solvent-induced electron localization in symmetric mixed-valence complexes. All conclusions are based on strong parallels found between the results of calculations performed using density-functional theory (DFT) and time-dependent DFT (TDDFT), complete-active-space self-consistent-field (CASSCF) with second-order perturbation-theory correction (CASPT2) theory, and equation-of-motion coupled Cluster (EOM-CCSD) theory, calculations that are verified through detailed comparison of computed properties with experimental data for both the isolated molecules and the ground-state hydrogen bond.
引用
收藏
页码:1576 / 1586
页数:11
相关论文
共 93 条
[31]  
Frisch M.J., 2016, Gaussian 16 Revision C. 01. 2016, V01
[32]   Solvent effects on the n->pi transition of pyrimidine in aqueous solution [J].
Gao, JL ;
Byun, K .
THEORETICAL CHEMISTRY ACCOUNTS, 1997, 96 (03) :151-156
[33]   APPLICATION OF UNITARY GROUP-METHODS TO CONFIGURATION-INTERACTION CALCULATIONS [J].
HEGARTY, D ;
ROBB, MA .
MOLECULAR PHYSICS, 1979, 38 (06) :1795-1812
[34]   SELF-CONSISTENT MOLECULAR-ORBITAL METHODS .12. FURTHER EXTENSIONS OF GAUSSIAN-TYPE BASIS SETS FOR USE IN MOLECULAR-ORBITAL STUDIES OF ORGANIC-MOLECULES [J].
HEHRE, WJ ;
DITCHFIELD, R ;
POPLE, JA .
JOURNAL OF CHEMICAL PHYSICS, 1972, 56 (05) :2257-+
[35]  
HELGAKER T, 1997, DALTON RELEASE 1 0
[36]  
Herzberg G, 1966, MOL SPECTRA MOL STRU, V3
[37]   PRECISE SOLUTION OF THE ROTATION BENDING SCHRODINGER EQUATION FOR A TRIATOMIC MOLECULE WITH APPLICATION TO THE WATER MOLECULE [J].
HOY, AR ;
BUNKER, PR .
JOURNAL OF MOLECULAR SPECTROSCOPY, 1979, 74 (01) :1-8
[38]   Solvent effects on the electronic spectra of transition metal complexes [J].
Hush, NS ;
Reimers, JR .
CHEMICAL REVIEWS, 2000, 100 (02) :775-786
[39]   Solvent effects on metal to ligand charge transfer excitations [J].
Hush, NS ;
Reimers, JR .
COORDINATION CHEMISTRY REVIEWS, 1998, 177 :37-60
[40]  
*IBM CORP, 1997, CPMD CAR PARR MOL DY