Natural Science

Volume 4, Issue 5 (May 2012)

ISSN Print: 2150-4091   ISSN Online: 2150-4105

Google-based Impact Factor: 1.08  Citations  

Effect of external electric field upon charge distribution, energy and dipole moment of selected monosaccharide molecules

HTML  Download Download as PDF (Size: 456KB)  PP. 276-285  
DOI: 10.4236/ns.2012.45040    5,225 Downloads   9,763 Views  Citations

ABSTRACT

External electric field of 0.001, 0.01 and 0.05 a.u. changes distribution of the electron density in α- and β-D-glucose, α- and β-D-galactose, α- and β-fructopyranoses and α- and β-fructofuranoses, α- and β-D-ribofuranoses and α and β-D-xylo- furanoses. Hyper-Chem 8.0 software was used together with the AM1 method for optimization of the conformation of the molecules of monosaccharides under study. Then polarizability, charge distribution, potential and dipole moment for molecules placed in the external electric field of 0.000, 0.001, 0.01 and 0.05 a.u. were calculated involving DFT 3-21G method. Application of the external field induced polarizability of electrons, atoms and dipoles, the latter resulting in eventual reorientation of the molecules along the applied field of the molecules and the electron density redistribution at particular atoms. Increase in the field strength generated mostly irregular changes of the electron densities at particular atoms of the molecules as well as polarizabilities. Energy of these molecules and their dipole moments also varied with the strength of the field applied. Results of computations imply that saccharides present in the living organisms may participate in the response of the living organisms to the external electric field affecting metabolism of the molecules in the body fluids by fitting molecules to the enzymes. Structural changes of saccharide components of the membranes can influence the membrane permeability.

Share and Cite:

Mazurkiewicz, J. and Tomasik, P. (2012) Effect of external electric field upon charge distribution, energy and dipole moment of selected monosaccharide molecules. Natural Science, 4, 276-285. doi: 10.4236/ns.2012.45040.

Cited by

[1] Measurement of Dielectric Properties in Mixtures of Various Rice Cultivars for Purpose of Detecting Contamination in Industry.
Przeglad …, 2024
[2] Toward Metal-and Catalyst-free Reactions: Deciphering the substituent and external electric field effects on the Diels-Alder reaction between Ethylene and …
2023
[3] Separation detection of saccharides in whole blood using an electrodynamic microfluidic channel sensor with AuCo dendrite-anchored conductive polymer
Sensors and Actuators B …, 2023
[4] Using Dielectric Constant Measurement to Monitor Ethanol Fermentation and Anaerobic Co-Digestion of Lignocellulosic Biomass
Fermentation, 2023
[5] Why Is α-d-Glucose Monomorphic? Insights from Accurate Experimental Charge Density at 90 K
Crystal Growth & Design, 2022
[6] Do non-thermal effects exist in microwave heating of glucose aqueous solutions? Evidence from molecular dynamics simulations
Food Chemistry, 2022
[7] Molecular basis of thermophoresis
2021
[8] Effect of the external electric field on the structure and reactivity of deoxyribonucleic acids.
Polish Journal of …, 2019
[9] EFFECT OF THE EXTERNAL ELECTRIC FIELD ON THE STRUCTURE AND REACTIVITY OF DEOXYRIBONUCLEIC ACIDS
POLISH JOURNAL OF NATURAL SCIENCES, 2019
[10] Charge Density and Electrical Characteristics of 1, 2-di ([1, 1′-biphenyl]-4-yl) ethyne (DBPE) Molecular Nanowire by Quantum Chemical Study
Journal of Computational and Theoretical Nanoscience, 2018
[11] Structure and Reactivity of Selected Pyrimidine and Purine Bases in the External Electric Field
2018
[12] Effect of an External Electric Field on Structure, Stability and Energetic of Mg 2 CH3OH Complex: A DFT Study
International Journal of Computational and Theoretical Chemistry, 2018
[13] On the effect of external perturbation on amino acid salt bridge: a DFT study
Journal of Chemical Sciences, 2017
[14] Effect of the External Electric Field on the Structure and Reactivity of Model Complex Lipids
Current Physical Chemistry, 2017
[15] Starch–metal complexes and metal compounds
Journal of the Science of Food and Agriculture, 2017
[16] Dielectric spectroscopy technique for carbohydrate characterization of fragrant rice, brown rice and white rice
2017
[17] Effect of the External Static Electric Fields on Fatty Acids and Their Glycerides
Current Physical Chemistry, 2016
[18] Effect of the external electric field on selected tripeptides
Amino acids, 2015
[19] Investigating the quasi-oscillatory behavior of electrical parameters with the concentration of D-glucose in aqueous solution
Journal of Electrical Bioimpedance, 2015
[20] DENSITY FUNCTIONAL ANALYSIS OF 1, 4-DIVINYLCYCLOHEXENE UNDER EXTERNAL ELECTRIC FIELD
Asian Journal of Science and Technology, 2014
[21] Structural, Electrostatic and Transport properties of tetracene under applied electric field using quantum chemical calculations
Elixir Appl. Chem., 2014
[22] Effect of External Electric Field Upon Selected Model Dipeptides
Advances in Natural Science, 2014
[23] Spatial Variability of Vegetation in the Changing Climate of the Baikal Region
intechopen, 2013
[24] Effect of External Electric Field Upon Selected Proteogenic Amino Acids
Advances in Natural Science, 2013
[25] Effect of external electric field upon lower alkanols
Advances in Natural Science, 2012

Copyright © 2025 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.