Convergence of Excitation Energies in Mixed Quantum and Classical Solvent: Comparison of Continuum and Point Charge Models

被引:46
作者
Provorse, Makenzie R. [1 ]
Peev, Thomas [1 ]
Xiong, Chou [1 ]
Isborn, Christine M. [1 ]
机构
[1] Univ Calif Merced, Chem & Chem Biol, Merced, CA 95343 USA
基金
美国国家科学基金会;
关键词
DENSITY-FUNCTIONAL THEORY; EXCITED-STATES; ENZYMATIC-REACTIONS; SCREENING MODEL; FORCE-FIELDS; SOLVATION; QM/MM; MOLECULES; SPECTRA; POLARIZATION;
D O I
10.1021/acs.jpcb.6b09176
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
Mixed quantum mechanical (QM)/classical methods provide a computationally efficient approach to modeling both ground and excited states in the condensed phase. To accurately model short-range interactions, some amount of the environment can be included in the QM region, whereas a classical model can treat long-range interactions to maintain computational affordability. The best computational protocol for these mixed QM/classical methods can be determined by examining convergence of molecular properties. Here, we compare molecular mechanical (MM) fixed point charges to a polarizable continuum model (PCM) for computing electronic excitations in solution. We computed the excitation energy of three pairs of neutral/anionic molecules in aqueous solvent, including up to 250 water molecules in the QM region. Interestingly, the convergence is similar for MM point charges and a PCM, with convergence achieved when at least one full solvation shell is treated with QM. Although the van der Waals (VDW) definition of the PCM cavity is adequate with small amounts of QM solvent, larger QM solvent layers had gaps in the VDW PCM cavity, leading to asymptotically incorrect excitation energies. Given that the VDW cavity leads to unphysical solutesolvent interactions, we advise using a solvent-excluded surface cavity for QM/PCM calculations that include QM solvent.
引用
收藏
页码:12148 / 12159
页数:12
相关论文
共 83 条
[1]   Advances in Quantum and Molecular Mechanical (QM/MM) Simulations for Organic and Enzymatic Reactions [J].
Acevedo, Orlando ;
Jorgensen, William L. .
ACCOUNTS OF CHEMICAL RESEARCH, 2010, 43 (01) :142-151
[2]   On the performance of quantum chemical methods to predict solvatochromic effects:: The case of acrolein in aqueous solution [J].
Aidas, Kestutis ;
Mogelhoj, Andreas ;
Nilsson, Elna J. K. ;
Johnson, Matthew S. ;
Mikkelsen, Kurt V. ;
Christiansen, Ove ;
Soderhjelm, Par ;
Kongsted, Jacob .
JOURNAL OF CHEMICAL PHYSICS, 2008, 128 (19)
[3]   Spectral "Fine" Tuning in Fluorescent Proteins: The Case of the GFP-Like Chromophore in the Anionic Protonation State [J].
Amat, Pietro ;
Nifosi, Riccardo .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2013, 9 (01) :497-508
[4]  
[Anonymous], J CHEM PHYS
[5]  
[Anonymous], 2006, J CHEM PHYS
[6]   Quantum calculation of molecular energies and energy gradients in solution by a conductor solvent model [J].
Barone, V ;
Cossi, M .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (11) :1995-2001
[7]   THE MISSING TERM IN EFFECTIVE PAIR POTENTIALS [J].
BERENDSEN, HJC ;
GRIGERA, JR ;
STRAATSMA, TP .
JOURNAL OF PHYSICAL CHEMISTRY, 1987, 91 (24) :6269-6271
[8]   Time dependent density functional theory study of charge-transfer and intramolecular electronic excitations in acetone-water systems [J].
Bernasconi, L ;
Sprik, M ;
Hutter, J .
JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (23) :12417-12431
[9]   Quantum Chemistry Behind Bioimaging: Insights from Ab Initio Studies of Fluorescent Proteins and Their Chromophores [J].
Bravaya, Ksenia B. ;
Grigorenko, Bella L. ;
Nemukhin, Alexander V. ;
Krylov, Anna I. .
ACCOUNTS OF CHEMICAL RESEARCH, 2012, 45 (02) :265-275
[10]   DETERMINING ATOM-CENTERED MONOPOLES FROM MOLECULAR ELECTROSTATIC POTENTIALS - THE NEED FOR HIGH SAMPLING DENSITY IN FORMAMIDE CONFORMATIONAL-ANALYSIS [J].
BRENEMAN, CM ;
WIBERG, KB .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1990, 11 (03) :361-373