Scuola Normale Superiore, Piazza dei Cavalieri 7, 56126 Pisa, Italy.
Istituto Nazionale di Fisica Nucleare (INFN) sezione di Pisa, Largo Bruno Pontecorvo 3, 56127 Pisa, Italy.
J Chem Theory Comput. 2022 Apr 12;18(4):2479-2493. doi: 10.1021/acs.jctc.2c00046. Epub 2022 Mar 8.
Multiscale methods combining quantum mechanics and molecular mechanics (QM/MM) have become the most suitable and effective strategies for the investigation of the spectroscopic properties of medium-to-large size chromophores in condensed phases. In this context, we are developing a novel workflow aimed at improving the generality, reliability, and ease of use of the available computational tools. In this paper, we report our latest developments with specific reference to a general protocol based on atomistic simulations, carried out under nonperiodic boundary conditions (NPBC). In particular, we add to our in house MD engine a new efficient treatment of mean field electrostatic contributions to energy and forces, together with the capability of performing the simulations either in the canonical () or in the isothermal-isobaric () ensemble. Next, we provide convincing evidence that the NBPC approach enhanced by specific tweaks for rigid body propagation, allows for the simulation of solute-solvent systems with a minimum number of degrees of freedom and large integration time step. After its validation, this new approach is applied to the challenging case of solvatochromic effects on the electron paramagnetic resonance (EPR) spectrum of a prototypical nitroxide radical. To this end, we propose and validate also an automated protocol to extract and weight simulation snapshots, making use of a continuous description of the strength of solute-solvent hydrogen bridges. While further developments are being worked on, the effectiveness of our approach, even in its present form, is demonstrated by the accuracy of the results obtained through an unsupervised approach characterized by a strongly reduced computational cost as compared to that of conventional QM/MM models, without any appreciable deterioration of accuracy.
多尺度方法结合量子力学和分子力学(QM/MM)已经成为研究凝聚相中介观至大尺寸发色团光谱性质最适合和有效的策略。在这种情况下,我们正在开发一种新的工作流程,旨在提高现有计算工具的通用性、可靠性和易用性。在本文中,我们报告了最新的进展,特别是针对基于原子模拟的通用协议,该协议在非周期性边界条件(NPBC)下进行。具体来说,我们在内部 MD 引擎中添加了一种新的有效处理静电场对能量和力的平均场贡献的方法,以及在正则()或等压等焓()系综中进行模拟的能力。接下来,我们提供了令人信服的证据,表明通过特定的刚体传播调整增强的 NPBC 方法允许用最小数量的自由度和大的积分时间步长模拟溶剂化体系。在验证之后,这种新方法被应用于电子顺磁共振(EPR)光谱中典型的氮氧自由基溶剂化变色效应的挑战性案例。为此,我们还提出并验证了一种自动提取和加权模拟快照的协议,该协议利用了溶质-溶剂氢键强度的连续描述。虽然正在进行进一步的开发,但我们的方法的有效性,即使在其目前的形式下,也通过使用大大降低的计算成本的无监督方法获得的结果的准确性得到证明,与传统的 QM/MM 模型相比,其准确性没有任何明显的降低。