Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities

Aqueous charge injection in forms of electrons, protons, lone pairs, ions, and molecular dipoles by solvation is ubiquitously important to our health and life. Pursuing fine-resolution detection and consistent insight into solvation dynamics and solute capabilities has become an increasingly active...

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Main Author: Sun, Chang Qing
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/139640
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1396402020-05-20T09:24:23Z Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities Sun, Chang Qing School of Electrical and Electronic Engineering Centre of Micro-/Nano-electronics Engineering::Electrical and electronic engineering Acid Base Aqueous charge injection in forms of electrons, protons, lone pairs, ions, and molecular dipoles by solvation is ubiquitously important to our health and life. Pursuing fine-resolution detection and consistent insight into solvation dynamics and solute capabilities has become an increasingly active subject. This treatise shows that charge injection by solvation mediates the O:H–O bonding network and properties of a solution through O:H formation, H↔H frag-ilization, O:⇐⇒:O compression, electrostatic polarization, H 2 O dipo-lar shielding, solute–solute interaction, and undercoordinated H–O bond contraction. A combination of the hydrogen bond (O:H–O or HB with ‘:’ being the electron lone pairs of oxygen) cooperativity notion and the differential phonon spectrometrics (DPS) has enabled quantitative information on the following: (i) the number fraction and phonon stiffness of HBs transiting from the mode of ordinary water to hydration; (ii) solute–solvent and solute–solute molecular nonbond interactions; and (iii) interdependence of skin stress, solution viscosity, molecular diffusivity, solvation thermodynamics, and critical pressures and temperatures for phase transitions. An examination of solvation dynamics has clarified the following: (i) the excessive protons create the H↔H or anti-HB point breaker to disrupt the acidic solution network and surface stress. (ii) The excessive lone pairs generate the O:⇐⇒:O or super–HB point compressor to shorten the O:H nonbond but lengthen the H–O bond in H 2 O 2 and basic solutions; yet, bond-order-deficiency shortens and stiffens the H–O bond due H 2 O 2 and OH − solutes. (iii) Ions serve each as a charge center that aligns, clusters, stretches, and polarizes their neighboring HBs to form hydration shells. (iv) Solvation of alcohols, aldehydes, complex salts, carboxylic and formic acids, glycine, and sugars distorts the solute–solvent interface structures with the involvement of the anti-HB or the super-HB. Extending the knowledge and strategies to catalysis, solution–protein, drug–cell, liquid–solid, colloid–matrix interactions and molecular crystals would be even more fascinating and rewarding. 2020-05-20T09:24:23Z 2020-05-20T09:24:23Z 2018 Journal Article Sun, C. Q. (2018). Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities. International Reviews in Physical Chemistry, 37(3-4), 363-558. doi:10.1080/0144235X.2018.1544446 0144-235X https://hdl.handle.net/10356/139640 10.1080/0144235X.2018.1544446 2-s2.0-85058372280 3-4 37 363 558 en International Reviews in Physical Chemistry © 2018 Informa UK Limited, trading as Taylor & Francis Group. All rights reserved.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Acid
Base
spellingShingle Engineering::Electrical and electronic engineering
Acid
Base
Sun, Chang Qing
Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
description Aqueous charge injection in forms of electrons, protons, lone pairs, ions, and molecular dipoles by solvation is ubiquitously important to our health and life. Pursuing fine-resolution detection and consistent insight into solvation dynamics and solute capabilities has become an increasingly active subject. This treatise shows that charge injection by solvation mediates the O:H–O bonding network and properties of a solution through O:H formation, H↔H frag-ilization, O:⇐⇒:O compression, electrostatic polarization, H 2 O dipo-lar shielding, solute–solute interaction, and undercoordinated H–O bond contraction. A combination of the hydrogen bond (O:H–O or HB with ‘:’ being the electron lone pairs of oxygen) cooperativity notion and the differential phonon spectrometrics (DPS) has enabled quantitative information on the following: (i) the number fraction and phonon stiffness of HBs transiting from the mode of ordinary water to hydration; (ii) solute–solvent and solute–solute molecular nonbond interactions; and (iii) interdependence of skin stress, solution viscosity, molecular diffusivity, solvation thermodynamics, and critical pressures and temperatures for phase transitions. An examination of solvation dynamics has clarified the following: (i) the excessive protons create the H↔H or anti-HB point breaker to disrupt the acidic solution network and surface stress. (ii) The excessive lone pairs generate the O:⇐⇒:O or super–HB point compressor to shorten the O:H nonbond but lengthen the H–O bond in H 2 O 2 and basic solutions; yet, bond-order-deficiency shortens and stiffens the H–O bond due H 2 O 2 and OH − solutes. (iii) Ions serve each as a charge center that aligns, clusters, stretches, and polarizes their neighboring HBs to form hydration shells. (iv) Solvation of alcohols, aldehydes, complex salts, carboxylic and formic acids, glycine, and sugars distorts the solute–solvent interface structures with the involvement of the anti-HB or the super-HB. Extending the knowledge and strategies to catalysis, solution–protein, drug–cell, liquid–solid, colloid–matrix interactions and molecular crystals would be even more fascinating and rewarding.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Sun, Chang Qing
format Article
author Sun, Chang Qing
author_sort Sun, Chang Qing
title Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
title_short Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
title_full Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
title_fullStr Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
title_full_unstemmed Aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
title_sort aqueous charge injection : solvation bonding dynamics, molecular nonbond interactions, and extraordinary solute capabilities
publishDate 2020
url https://hdl.handle.net/10356/139640
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