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Absolute ion hydration free energy scale and the surface potential of water via quantum simulation
by
Shi, Yu
, Beck, Thomas L.
in
Chemistry
/ Electric fields
/ Electrostatic properties
/ Energy
/ Free energy
/ Hydration
/ Hydrophobicity
/ Interfaces
/ Physical Sciences
/ Quantum mechanics
/ Water drops
2020
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Absolute ion hydration free energy scale and the surface potential of water via quantum simulation
by
Shi, Yu
, Beck, Thomas L.
in
Chemistry
/ Electric fields
/ Electrostatic properties
/ Energy
/ Free energy
/ Hydration
/ Hydrophobicity
/ Interfaces
/ Physical Sciences
/ Quantum mechanics
/ Water drops
2020
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Do you wish to request the book?
Absolute ion hydration free energy scale and the surface potential of water via quantum simulation
by
Shi, Yu
, Beck, Thomas L.
in
Chemistry
/ Electric fields
/ Electrostatic properties
/ Energy
/ Free energy
/ Hydration
/ Hydrophobicity
/ Interfaces
/ Physical Sciences
/ Quantum mechanics
/ Water drops
2020
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Absolute ion hydration free energy scale and the surface potential of water via quantum simulation
Journal Article
Absolute ion hydration free energy scale and the surface potential of water via quantum simulation
2020
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Overview
With a goal of determining an absolute free energy scale for ion hydration, quasi-chemical theory and ab initio quantum mechanical simulations are employed to obtain an accurate value for the bulk hydration free energy of the Na⁺ ion. The free energy is partitioned into three parts: 1) the inner-shell or chemical contribution that includes direct interactions of the ion with nearby waters, 2) the packing free energy that is the work to produce a cavity of size λ in water, and 3) the long-range contribution that involves all interactions outside the inner shell. The interfacial potential contribution to the free energy resides in the long-range term. By averaging cation and anion data for that contribution, cumulant terms of all odd orders in the electrostatic potential are removed. The computed total is then the bulk hydration free energy. Comparison with the experimentally derived real hydration free energy produces an effective surface potential of water in the range −0.4 to −0.5 V. The result is consistent with a variety of experiments concerning acid–base chemistry, ion distributions near hydrophobic interfaces, and electric fields near the surface of water droplets.
Publisher
National Academy of Sciences
Subject
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