TY - JOUR
T1 - Solvation structure and transport properties of alkali cations in dimethyl sulfoxide under exogenous static electric fields
AU - Kerisit, Sebastien
AU - Vijayakumar, M.
AU - Han, Kee Sung
AU - Mueller, Karl T.
N1 - Publisher Copyright:
© 2015 AIP Publishing LLC.
PY - 2015/6/14
Y1 - 2015/6/14
N2 - A combination of molecular dynamics simulations and pulsed field gradient nuclear magnetic resonance spectroscopy is used to investigate the role of exogenous electric fields on the solvation structure and dynamics of alkali ions in dimethyl sulfoxide (DMSO) and as a function of temperature. Good agreement was obtained, for select alkali ions in the absence of an electric field, between calculated and experimentally determined diffusion coefficients normalized to that of pure DMSO. Our results indicate that temperatures of up to 400 K and external electric fields of up to 1 V nm-1 have minimal effects on the solvation structure of the smaller alkali cations (Li+ and Na+) due to their relatively strong ion-solvent interactions, whereas the solvation structures of the larger alkali cations (K+, Rb+, and Cs+) are significantly affected. In addition, although the DMSO exchange dynamics in the first solvation shell differ markedly for the two groups, the drift velocities and mobilities are not significantly affected by the nature of the alkali ion. Overall, although exogenous electric fields induce a drift displacement, their presence does not significantly affect the random diffusive displacement of the alkali ions in DMSO. System temperature is found to have generally a stronger influence on dynamical properties, such as the DMSO exchange dynamics and the ion mobilities, than the presence of electric fields.
AB - A combination of molecular dynamics simulations and pulsed field gradient nuclear magnetic resonance spectroscopy is used to investigate the role of exogenous electric fields on the solvation structure and dynamics of alkali ions in dimethyl sulfoxide (DMSO) and as a function of temperature. Good agreement was obtained, for select alkali ions in the absence of an electric field, between calculated and experimentally determined diffusion coefficients normalized to that of pure DMSO. Our results indicate that temperatures of up to 400 K and external electric fields of up to 1 V nm-1 have minimal effects on the solvation structure of the smaller alkali cations (Li+ and Na+) due to their relatively strong ion-solvent interactions, whereas the solvation structures of the larger alkali cations (K+, Rb+, and Cs+) are significantly affected. In addition, although the DMSO exchange dynamics in the first solvation shell differ markedly for the two groups, the drift velocities and mobilities are not significantly affected by the nature of the alkali ion. Overall, although exogenous electric fields induce a drift displacement, their presence does not significantly affect the random diffusive displacement of the alkali ions in DMSO. System temperature is found to have generally a stronger influence on dynamical properties, such as the DMSO exchange dynamics and the ion mobilities, than the presence of electric fields.
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U2 - 10.1063/1.4921982
DO - 10.1063/1.4921982
M3 - Article
AN - SCOPUS:84935854354
SN - 0021-9606
VL - 142
JO - Journal of Chemical Physics
JF - Journal of Chemical Physics
IS - 22
M1 - 224502
ER -