Dissipative particle dynamics modeling of hydrogel swelling by osmotic ensemble method

被引:19
作者
Chen, Shensheng [1 ]
Yong, Xin [1 ,2 ]
机构
[1] SUNY Binghamton, Dept Mech Engn, 4400 Vestal Pkwy East, Binghamton, NY 13902 USA
[2] SUNY Binghamton, Inst Mat Res, 4400 Vestal Pkwy East, Binghamton, NY 13902 USA
关键词
MONTE-CARLO SIMULATIONS; VOLUME PHASE-TRANSITION; HIGH WATER-CONTENT; MOLECULAR-DYNAMICS; RADICAL POLYMERIZATION; STATISTICAL-MECHANICS; INJECTABLE HYDROGEL; POLYMERS; KINETICS; ADSORPTION;
D O I
10.1063/1.5045100
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
An osmotic ensemble method for dissipative particle dynamics (DPD) is developed for simulating the swelling behavior of polymer networks in aqueous solvent under constant solvent chemical potential, number of polymer beads, pressure, and temperature conditions. We apply a Langevin piston method to control the pressure of the polymer-solvent mixture. Chemical potential equilibrium is achieved via Monte Carlo insertions and deletions of solvent beads based on the total free energy change of the gel. The osmotic ensemble simulation produces swelling kinetics of hydrogels in excellent agreement with that obtained by previous methods but significantly reduces computational costs. The results show gel swelling as a result of the mechanical balance between osmotic pressure induced by the mixing of the polymer and solvent and elastic force originated from the network deformation. The simulations also elucidate the influence of solvent conditions and network topology on the degree of swelling. The bulk modulus of the model gel is probed at different solvency and its behavior is consistent with the prediction of Flory-Rehner theory. The osmotic ensemble DPD will permit the study of mechanical properties of hydrogels in mesoscale simulations and can be extended to model other complex fluid systems in chemical equilibrium under isothermal-isobaric conditions. Published by AIP Publishing.
引用
收藏
页数:11
相关论文
共 95 条
[1]   Hydrogel: Preparation, characterization, and applications: A review [J].
Ahmed, Enas M. .
JOURNAL OF ADVANCED RESEARCH, 2015, 6 (02) :105-121
[2]   Stimuli-responsive polymer gels [J].
Ahn, Suk-Kyun ;
Kasi, Rajeswari M. ;
Kim, Seong-Cheol ;
Sharma, Nitin ;
Zhou, Yuxiang .
SOFT MATTER, 2008, 4 (06) :1151-1157
[3]   MOLECULAR-DYNAMICS SIMULATIONS AT CONSTANT PRESSURE AND-OR TEMPERATURE [J].
ANDERSEN, HC .
JOURNAL OF CHEMICAL PHYSICS, 1980, 72 (04) :2384-2393
[4]   Swelling of a model network: A Gibbs-ensemble molecular dynamics study [J].
Aydt, EM ;
Hentschke, R .
JOURNAL OF CHEMICAL PHYSICS, 2000, 112 (12) :5480-5487
[5]   Self-reinforcing injectable hydrogel with both high water content and mechanical strength for bone repair [J].
Bai, Xiao ;
Lu, Shaoyu ;
Cao, Zhen ;
Gao, Chunmei ;
Duan, Haogang ;
Xu, Xiubin ;
Sun, Lu ;
Gao, Nannan ;
Feng, Chen ;
Liu, Mingzhu .
CHEMICAL ENGINEERING JOURNAL, 2016, 288 :546-556
[6]   Thermodynamics of temperature-sensitive polyether-modified poly(acrylic acid) microgels [J].
Bromberg, L ;
Temchenko, M ;
Moeser, GD ;
Hatton, TA .
LANGMUIR, 2004, 20 (14) :5683-5692
[7]  
Brown AC, 2014, NAT MATER, V13, P1108, DOI [10.1038/nmat4066, 10.1038/NMAT4066]
[8]   Water and polymer dynamics in chemically cross-linked hydrogels of poly(vinyl alcohol): A molecular dynamics simulation study [J].
Chiessi, Ester ;
Cavalieri, Francesca ;
Paradossi, Gaio .
JOURNAL OF PHYSICAL CHEMISTRY B, 2007, 111 (11) :2820-2827
[9]   Dynamic assembly of ultrasoft colloidal networks enables cell invasion within restrictive fibrillar polymers [J].
Douglas, Alison M. ;
Fragkopoulos, Alexandros A. ;
Gaines, Michelle K. ;
Lyon, L. Andrew ;
Fernandez-Nieves, Alberto ;
Barker, Thomas H. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (05) :885-890
[10]   Molecular simulation of adsorption and transport diffusion of model fluids in carbon nanotubes [J].
Düren, T ;
Keil, FJ ;
Seaton, NA .
MOLECULAR PHYSICS, 2002, 100 (23) :3741-3751