Division of Theoretical Chemistry, Lund University, Lund, Sweden.
Department of Physics, Chemistry and Pharmacy, Campusvej 55, 5230 Odense, Denmark.
Phys Chem Chem Phys. 2023 Feb 22;25(8):6153-6163. doi: 10.1039/d2cp04937f.
We have recently developed a method based on relativistic time-dependent density functional theory (TD-DFT) that allows the calculation of electronic spectra in solution (Creutzberg, Hedegård, , 2022, 3671). This method treats the solvent explicitly with a classical, polarizable embedding (PE) description. Furthermore, it employs the complex polarization propagator (CPP) formalism which allows calculations on complexes with a dense population of electronic states (such complexes are known to be problematic for conventional TD-DFT). Here, we employ this method to investigate both the dynamic and electronic effects of the solvent for the excited electronic states of -[Pt(N)(OH)(NH)] in aqueous solution. This complex decomposes into species harmful to cancer cells under light irradiation. Thus, understanding its photo-physical properties may lead to a more efficient method to battle cancer. We quantify the effect of the underlying structure and dynamics by classical molecular mechanics simulations, refined with a subsequent DFT or semi-empirical optimization on a cluster. Moreover, we quantify the effect of employing different methods to set up the solvated system, , how sensitive the results are to the method used for the refinement, and how large a solvent shell that is required. The electronic solvent effect is always included through a PE potential.
我们最近开发了一种基于相对论含时密度泛函理论(TD-DFT)的方法,该方法可以在溶液中计算电子光谱(Creutzberg、Hedegård,2022 年,3671 页)。该方法使用经典的极化嵌入(PE)描述明确处理溶剂。此外,它采用了复极化传播子(CPP)形式,允许对具有密集电子态的配合物进行计算(众所周知,这种配合物对传统的 TD-DFT 是有问题的)。在这里,我们使用这种方法来研究 -[Pt(N)(OH)(NH)]在水溶液中激发电子态的溶剂的动态和电子效应。该配合物在光照下分解为对癌细胞有害的物质。因此,了解其光物理性质可能会导致更有效的抗癌方法。我们通过经典分子力学模拟量化了结构和动力学的影响,并在后续的 DFT 或半经验优化上对其进行了改进。此外,我们还量化了不同方法对溶剂化体系的影响,结果对所使用的方法的敏感性,以及所需的溶剂壳的大小。电子溶剂效应总是通过 PE 势来包含。