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Energetics, Thermodynamics, and Hydrogen Bonding Diversity in Ammonium Halide Clusters.

作者信息

Biswakarma John J, Ciocoi Vlad, Topper Robert Q

机构信息

Department of Chemistry, The Cooper Union for the Advancement of Science and Art , 41 Cooper Square, New York, New York 10003, United States.

出版信息

J Phys Chem A. 2016 Oct 13;120(40):7924-7934. doi: 10.1021/acs.jpca.6b06788. Epub 2016 Oct 4.

DOI:10.1021/acs.jpca.6b06788
PMID:27657696
Abstract

Contributions from different intermolecular and interionic forces, as well as variations in bond energies, produce size-dependent variations in the structures of acid-base molecular clusters. In this work the structures and interaction energetics of cluster particles with the nominal formulas (NHX), X = (F, Cl, Br) are predicted using either "mag-walking" sawtooth simulated annealing Monte Carlo calculations or model building, followed by M06-2X or RI-MP2 geometry optimization and single-point energy calculations. Whereas the n = 1 clusters all exhibit a single hydrogen bond, small (NHF) particles (n = 2-5) exhibit three distinct types of hydrogen bonds as a function of size (traditional, ion-pair and proton-shared). However, (NHBr) and (NHCl) particles (n = 2-13) all solely exhibit ion-pair hydrogen bonding, with even values of n exhibiting pronounced relative stability. The computed differential interaction energy of the bromide and chloride systems is generally near the bulk limit of the difference in their accepted lattice energies, despite the fact that their structures do not resemble the bulk crystal structures. Nanoparticle growth reactions are predicted to be thermodynamically spontaneous under standard conditions, with significant size and system dependencies. This work is designed to further our understanding of the nature of hydrogen bonding and other intermolecular forces, particularly within ionic nanocrystallites, as well as the thermodynamics of cluster formation.

摘要

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引用本文的文献

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Decomposition and Growth Pathways for Ammonium Nitrate Clusters and Nanoparticles.硝酸铵团簇和纳米颗粒的分解与生长途径
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