On the entanglement of chromophore and solvent orbitals
Abstract
Among various types of chromophore–solvent interactions, the entanglement of chromophore and solvent orbitals, when significant, can cause the chromophore frontier orbitals to spread over to nearby solvent molecules, introducing partial charge-transfer character to the lowest excitations of the chromophore and lowering the excitation energies. While highly intuitive, the physical details of such orbital entanglement effects on the excitation energies of chromophores have yet to be fully explored. Here, using two well-known biochromophores (oxyluciferin and p-hydroxybenzyledene imidazolinone) as examples, we show that the chromophore–solvent orbital entanglements can be elucidated using two quantum mechanical embedding schemes: density matrix embedding theory and absolutely localized molecular orbitals. However, there remains a great challenge to incorporate the orbital entanglement effect in combined quantum mechanical molecular mechanical (QM/MM) calculations, and we hope that our findings will stimulate the development of new methods in that direction.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (8)
Xinwei Ji
Department of Physics and Astronomy, University of Delaware 1 , Newark, Delaware 19716,
Zheng Pei
Department of Chemistry and Biochemistry, University of Oklahoma 2 , Norman, Oklahoma 73019,
Kim Ngan Huynh
Department of Chemistry and Biochemistry, San Diego State University 3 , San Diego, California 92182,
Junjie Yang
Xiaoliang Pan
Department of Chemistry and Biochemistry, University of Oklahoma 2 , 101 Stephenson Pkwy, Norman, Oklahoma 73019,
Binju Wang
State Key Laboratory of Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering
Yuezhi Mao
Department of Chemistry
Yihan Shao
Department of Chemistry