A theoretical study of uracil–(H2O)n, n = 2 to 4

Literature Information

Publication Date 2001-06-19
DOI 10.1039/B102701H
Impact Factor 3.676
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Abstract

The potential energy surfaces of the uracil–(H2O)n clusters with n = 2, 3 and 4 are explored with an anisotropic atom–atom potential. The structures and binding energies of the uracil–(H2O)2 structures and of selected uracil–(H2O)3 and uracil–(H2O)4 structures are recomputed with second-order Møller–Plesset (MP2) perturbation theory and the interaction-optimized DZPi basis set. Single point calculations are carried out at the optimized geometries using the slightly larger ESPB basis set. Full as well as rigid-body geometry optimizations were carried out. The use of rigid monomers causes the binding energies to be underestimated by 10% and the hydrogen-bond distances to be overestimated by about 0.1 Å. It is found that re-optimization of the hydrogen-bond lengths with counterpoise correction increases the binding energy by about 3%, and increases the hydrogen-bond lengths by approximately 0.1 Å. These results show that care must be taken to obtain unbiased results from ab initio calculations. For example, the uracil–(H2O)3 binding energy obtained from a standard, rigid-body MP2/DZPi geometry optimization is as much as 18 kJ mol−1 smaller than the binding energy obtained from a full geometry optimization including counterpoise corrections for the hydrogen-bond distances. Our best estimates for the binding energies of the uracil–(H2O)2, uracil–(H2O)3 and uracil–(H2O)4 global minima are 93.6, 132.9 and 165.8 kJ mol−1, respectively.

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Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
Self-citation Rate: 10.3%
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Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

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