Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems

Subsystem phases and electronic flows involving the acidic and basic sites of the donor (B) and acceptor (A) substrates of chemical reactions are revisited. The emphasis is placed upon the phase–current relations, a coherence of elementary probability flows in the preferred reaction complex, and on...

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Main Author: Roman F. Nalewajski
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/10/3615
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spelling doaj-a5c6dcf7f49740329d7b9886947252d92020-11-25T03:24:21ZengMDPI AGApplied Sciences2076-34172020-05-01103615361510.3390/app10103615Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor SystemsRoman F. Nalewajski0Department of Theoretical Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Cracow, PolandSubsystem phases and electronic flows involving the acidic and basic sites of the donor (B) and acceptor (A) substrates of chemical reactions are revisited. The emphasis is placed upon the phase–current relations, a coherence of elementary probability flows in the preferred reaction complex, and on phase-equalization in the equilibrium state of the whole reactive system. The overall and partial charge-transfer (CT) phenomena in alternative coordinations are qualitatively examined and electronic communications in A—B systems are discussed. The internal polarization (P) of reactants is examined, patterns of average electronic flows are explored, and energy changes associated with P/CT displacements are identified using the chemical potential and hardness descriptors of reactants and their active sites. The nonclassical (phase/current) contributions to resultant gradient information are investigated and the preferred current-coherence in such donor–acceptor systems is predicted. It is manifested by the equalization of equilibrium local phases in the entangled subsystems.https://www.mdpi.com/2076-3417/10/10/3615chemical reactivity theorycoordination complexesdonor–acceptor systemspartial electronic flowsphase–current relationssubsystem phases
collection DOAJ
language English
format Article
sources DOAJ
author Roman F. Nalewajski
spellingShingle Roman F. Nalewajski
Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
Applied Sciences
chemical reactivity theory
coordination complexes
donor–acceptor systems
partial electronic flows
phase–current relations
subsystem phases
author_facet Roman F. Nalewajski
author_sort Roman F. Nalewajski
title Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
title_short Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
title_full Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
title_fullStr Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
title_full_unstemmed Phase Equalization, Charge Transfer, Information Flows and Electron Communications in Donor–Acceptor Systems
title_sort phase equalization, charge transfer, information flows and electron communications in donor–acceptor systems
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-05-01
description Subsystem phases and electronic flows involving the acidic and basic sites of the donor (B) and acceptor (A) substrates of chemical reactions are revisited. The emphasis is placed upon the phase–current relations, a coherence of elementary probability flows in the preferred reaction complex, and on phase-equalization in the equilibrium state of the whole reactive system. The overall and partial charge-transfer (CT) phenomena in alternative coordinations are qualitatively examined and electronic communications in A—B systems are discussed. The internal polarization (P) of reactants is examined, patterns of average electronic flows are explored, and energy changes associated with P/CT displacements are identified using the chemical potential and hardness descriptors of reactants and their active sites. The nonclassical (phase/current) contributions to resultant gradient information are investigated and the preferred current-coherence in such donor–acceptor systems is predicted. It is manifested by the equalization of equilibrium local phases in the entangled subsystems.
topic chemical reactivity theory
coordination complexes
donor–acceptor systems
partial electronic flows
phase–current relations
subsystem phases
url https://www.mdpi.com/2076-3417/10/10/3615
work_keys_str_mv AT romanfnalewajski phaseequalizationchargetransferinformationflowsandelectroncommunicationsindonoracceptorsystems
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