Unraveling Local Structure of Molten Salts via X-ray Scattering, Raman Spectroscopy, and Ab Initio Molecular Dynamics
Author(s) -
Santanu Roy,
Martin Brehm,
S. Sharma,
Fei Wu,
Dmitry S. Maltsev,
Phillip Halstenberg,
Leighanne C. Gallington,
Shan M. Mahurin,
Sheng Dai,
Alexander S. Ivanov,
Claudio J. Margulis,
Vyacheslav S. Bryantsev
Publication year - 2021
Publication title -
the journal of physical chemistry b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.864
H-Index - 392
eISSN - 1520-6106
pISSN - 1520-5207
DOI - 10.1021/acs.jpcb.1c03786
Subject(s) - chemistry , raman spectroscopy , molecular dynamics , density functional theory , small angle x ray scattering , spectroscopy , raman scattering , crystallography , ab initio , chemical physics , tetrahedron , alkali metal , ab initio quantum chemistry methods , computational chemistry , scattering , molecule , physics , organic chemistry , quantum mechanics , optics
In this work, we resolve a long-standing issue concerning the local structure of molten MgCl 2 by employing a multimodal approach, including X-ray scattering and Raman spectroscopy, along with the theoretical modeling of the experimental spectra based on ab initio molecular dynamics (AIMD) simulations utilizing several density functional theory (DFT) methods. We demonstrate the reliability of AIMD simulations in achieving excellent agreement between the experimental and simulated spectra for MgCl 2 and 50 mol % MgCl 2 + 50 mol % KCl, and ZnCl 2 , thus allowing structural insights not directly available from experiment alone. A thorough computational analysis using five DFT methods provides a convergent view that octahedrally coordinated magnesium in pure MgCl 2 upon melting preferentially coordinates with five chloride anions to form distorted square pyramidal polyhedra that are connected via corners and to a lesser degree via edges. This is contrasted with the results for ZnCl 2 , which does not change its tetrahedral coordination on melting. Although the five-coordinate MgCl 5 3- complex was not considered in the early literature, together with an increasing tendency to form a tetrahedrally coordinated complex with decreasing the MgCl 2 content in the mixture with alkali metal chloride systems, current work reconciles the results of most previous seemingly contradictory experimental studies.
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