TY - JOUR
T1 - Molecular simulation of surfactants in span series at the decane/water interface
AU - Shi, Peng
AU - Zhang, Hui
AU - Lin, Lin
AU - Song, Chunhui
AU - Chen, Qingguo
AU - Li, Zesheng
N1 - Publisher Copyright:
Copyright © 2018, AIDIC Servizi S.r.l.
PY - 2018
Y1 - 2018
N2 - This paper aims to determine the electric field intensity in the emulsion dehydration from the microscopic perspective. For this purpose, molecular dynamics (MD) simulation and density functional theory (DFT) were adopted to model the surface feature, hydrophilic groups, and hydrophobic groups of three types of Span surfactants, namely, Span 20, Span 60, and Span 80. Considering the stability of the microemulsion and application of electric fields, the structural changes and the nature of the surfactants were discussed in details under the external electric field. The results show that the simulated interfacial tension agrees well with the experimental data, an evidence to the rationality and reliability of the simulation system; the surfactant hydrophilic groups could form medium-strong hydrogen bonds with water; the deformation of surfactant space structure enhanced the role of hydrogen bonding under the electric field, thus reducing the emulsion stability. The research findings shed new light on the molecular simulation of Span surfactants.
AB - This paper aims to determine the electric field intensity in the emulsion dehydration from the microscopic perspective. For this purpose, molecular dynamics (MD) simulation and density functional theory (DFT) were adopted to model the surface feature, hydrophilic groups, and hydrophobic groups of three types of Span surfactants, namely, Span 20, Span 60, and Span 80. Considering the stability of the microemulsion and application of electric fields, the structural changes and the nature of the surfactants were discussed in details under the external electric field. The results show that the simulated interfacial tension agrees well with the experimental data, an evidence to the rationality and reliability of the simulation system; the surfactant hydrophilic groups could form medium-strong hydrogen bonds with water; the deformation of surfactant space structure enhanced the role of hydrogen bonding under the electric field, thus reducing the emulsion stability. The research findings shed new light on the molecular simulation of Span surfactants.
UR - http://www.scopus.com/inward/record.url?scp=85051015578&partnerID=8YFLogxK
U2 - 10.3303/CET1866178
DO - 10.3303/CET1866178
M3 - Article
AN - SCOPUS:85051015578
SN - 2283-9216
VL - 66
SP - 1063
EP - 1068
JO - Chemical Engineering Transactions
JF - Chemical Engineering Transactions
ER -