关于发色团和溶剂轨道的纠缠。

IF 3.1 2区 化学 Q3 CHEMISTRY, PHYSICAL
Xinwei Ji, Zheng Pei, Kim Ngan Huynh, Junjie Yang, Xiaoliang Pan, Binju Wang, Yuezhi Mao, Yihan Shao
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引用次数: 0

摘要

在各种类型的发色团-溶剂相互作用中,当发色团和溶剂轨道的纠缠显著时,会导致发色团前沿轨道向附近的溶剂分子扩散,从而使发色团的最低激发引入部分电荷转移特征,降低激发能。虽然非常直观,但这种轨道纠缠对发色团激发能的影响的物理细节尚未得到充分探索。本文以两种著名的生物发色团(氧荧光素和对羟基苄基咪唑啉酮)为例,证明了发色团-溶剂轨道纠缠可以用密度矩阵嵌入理论和绝对定域分子轨道这两种量子力学嵌入方案来解释。然而,将轨道纠缠效应纳入联合量子力学分子力学(QM/MM)计算中仍然存在很大的挑战,我们希望我们的发现将刺激新方法在该方向的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the entanglement of chromophore and solvent orbitals.

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.

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来源期刊
Journal of Chemical Physics
Journal of Chemical Physics 物理-物理:原子、分子和化学物理
CiteScore
7.40
自引率
15.90%
发文量
1615
审稿时长
2 months
期刊介绍: The Journal of Chemical Physics publishes quantitative and rigorous science of long-lasting value in methods and applications of chemical physics. The Journal also publishes brief Communications of significant new findings, Perspectives on the latest advances in the field, and Special Topic issues. The Journal focuses on innovative research in experimental and theoretical areas of chemical physics, including spectroscopy, dynamics, kinetics, statistical mechanics, and quantum mechanics. In addition, topical areas such as polymers, soft matter, materials, surfaces/interfaces, and systems of biological relevance are of increasing importance. Topical coverage includes: Theoretical Methods and Algorithms Advanced Experimental Techniques Atoms, Molecules, and Clusters Liquids, Glasses, and Crystals Surfaces, Interfaces, and Materials Polymers and Soft Matter Biological Molecules and Networks.
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