1 |
Gu H , Yang Z , Gao J , et al . Heterodimers of nanoparticles: formation at a liquid-liquid interface and particle-specific surface modification by functional molecules[J]. Journal of the American Chemical Society, 2005, 127(1): 34-35.
|
2 |
Xu G K , Li Y , Li B , et al . Self-assembled lipid nanostructures encapsulating nanoparticles in aqueous solution[J]. Soft Matter, 2009, 5(20): 3977-3983.
|
3 |
Haun J B , Hammer D A . Quantifying nanoparticle adhesion mediated by specific molecular interactions[J]. Langmuir 2008, 24(16): 8821-8832.
|
4 |
Li Y , Rojas O J , Hinestroza J P . Boundary lubrication of PEO-PPO-PEO triblock copolymer physisorbed on polypropylene, polyethylene, and cellulose surfaces[J]. Industrial & Engineering Chemistry Research, 2012, 51: 2935-2944.
|
5 |
Tiberg F , Malmsten M , Linsem P , et al . Kinetic and equilibrium aspects of block copolymer adsorption[J]. Langmuir, 1991, 7(11): 2723-2730.
|
6 |
Sakai T , Alexandridis P . Mechanism of gold metal ion reduction, nanoparticle growth and size control in aqueous amphiphilic block copolymer solutions at ambient conditions[J]. Journal of Physical Chemistry B, 2005, 109(16): 7766-7777.
|
7 |
Zhou S , Sugawara-Narutaki A , Tsuboike S , et al . Nanoparticle vesicles with controllable surface topographies through block copolymer-mediated self-assembly of silica nanospheres[J]. Langmuir, 2015, 31(48): 13214-13220.
|
8 |
Lin Y , Daga V K , Anderson E R , et al . Nanoparticle-driven assembly of block copolymers: a simple route to ordered hybrid materials[J]. Journal of the American Chemical Society, 2011, 133(17): 6513-6516.
|
9 |
Koelman J M V A , Hoogerbrugge P J . Dynamic simulations of hard-sphere suspensions under steady shear[J]. EPL (Europhysics Letters), 1993, 21(3): 363.
|
10 |
Luu X C , Yu J , Striolo A . Nanoparticles adsorbed at the water/oil interface: coverage and composition effects on structure and diffusion, Langmuir,2013, 29(24): 7221-7228.
|
11 |
Sun N , Li Y , Wang D , et al . Mesoscopic simulation studies on the self-assembly of pluronic at oil/water interface[J]. Acta Chimica Sinica, 2013, 71(2): 186-192.
|
12 |
Wang L , Lin J , Zhang Q . Dissipative particle dynamics simulation on self-assembly of comb-coil copolymers[J]. Acta Chimica Sinica, 2013, 71(6): 913-919.
|
13 |
Groot R D , Warren P B . Dissipative particle dynamics: bridging the gap between atomistic and mesoscopic simulation[J]. Chem. Phys., 1997, 107(11): 4423.
|
14 |
Zeng Q H , Yu A B , Lu G Q . Multiscale modeling and simulation of polymer nanocomposites[J]. Progress in Polymer Science, 2008, 33(2): 191-269.
|
15 |
Xiang W J , Zhu Z , Song X , et al . Concentration-induced structural transition of block polymer self-assemblies on a nanoparticle surface: computer simulation[J]. RSC Advances, 2016, 6(104): 102057-102067.
|
16 |
Song X , Zhao S , Fang S , et al . Mesoscopic simulations of adsorption and association of peo-ppo-peo triblock copolymers on a hydrophobic surface: from mushroom hemisphere to rectangle brush[J]. Langmuir, 2016, 32(44): 11375-11385.
|
17 |
Monticelli L , Kandasamy S K , Periole X , Et Al . The MARTINI coarse- grained force field: extension to proteins[J]. Journal of Chemical Theory and Computation, 2008, 4(5): 819-834.
|
18 |
Uusitalo J J , Ing´Olfsson H I , Akhshi P , et al . Martini coarse-grained force field: extension to DNA[J]. Journal of Chemical Theory and Computation, 2015, 11(8): 3932-3945.
|
19 |
Rossi G , Elliott I G , Ala-Nissila T , et al . Molecular dynamics study of a MARTINI coarse-grained polystyrene brush in good solvent: structure and dynamics[J]. Macromolecules, 2011, 45: 563-571.
|
20 |
Oroskar P A , Jameson C J , Murad S . Surface functionalized nanoparticle permeation triggers lipid displacement and water and ion leakage[J]. Langmuir, 2015, 31(3): 1074-1085.
|
21 |
Nawaz S , Carbone P . Coarse-graining poly(ethylene oxide)-poly (propylene oxide)-poly(ethylene oxide) (PEO–PPO–PEO) block copolymers using the MARTINI force field[J]. Journal of Physical Chemistry B, 2014, 118(6): 1648-1659.
|
22 |
Hezaveh S , Samanta S , De Nicola A , et al . Understanding the interaction of block copolymers with DMPC lipid bilayer using coarse-grained molecular dynamics simulations[J]. Journal of Physical Chemistry B, 2012, 116(49): 14333-14345.
|
23 |
Hezaveh S . Study the interaction mechanisms of block copolymers with biological interfaces[D]. Italy: University of Salerno, 2012.
|
24 |
Prhashanna A , Khan S A , Chen S B . Co-micellization behavior in poloxamers: dissipative particle dynamics study[J]. Journal of Physical Chemistry B, 2014, 119(2): 572-582.
|
25 |
Costa K D , Hunter P J , Rogers J M , et al . A three-dimensional finite element method for large elastic deformations of ventricular myocardium(Ⅰ): Cylindrical and spherical polar coordinates[J]. Journal of Biomechanical Engineering, 1996, 118(4): 452-463.
|
26 |
Wu R , Deng M , Kong B , et al . Coarse-grained molecular dynamics simulation of ammonium surfactant self-assemblies: micelles and vesicles[J]. Journal of Physical Chemistry B, 2009, 113(45): 15010-15016.
|
27 |
Alexandridis P , Hatton A T . Poly(ethylene oxide)– poly(propylene oxide)-poly(ethylene oxide) block copolymer surfactants in aqueous solutions and at interfaces: thermodynamics, structure, dynamics, and modeling[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 1995, 96(1): 1-46.
|
28 |
Brandani P , Stroeve P . Kinetics of adsorption and desorption of PEO–PPO–PEO triblock copolymers on a self-assembled hydrophobic surface[J]. Macromolecules, 2003, 36(25): 9502-9509.
|
29 |
Li Y , Guo Y , Bao M , et al . Investigation of interfacial and structural properties of CTAB at the oil/water interface using dissipative particle dynamics simulations[J]. Journal of Colloid and Interface Science, 2011, 361(2): 573-580.
|
30 |
Nikunen P , Vattulainen I , Karttunen M . Reptational dynamics in dissipative particle dynamics simulations of polymer melts[J]. Physical Review E, 2007, 75(3): 036713.
|
31 |
Liu H , Li Y , Krause W E , et al . Mesoscopic simulations of the phase behavior of aqueous EO19PO29EO19 solutions confined and sheared by hydrophobic and hydrophilic surfaces[J]. ACS Applied Materials & Interfaces, 2011, 4(1): 87-95.
|
32 |
Xiang W , Zhao S , Song X , et al . Amphiphilic nanosheet self-assembly at the water/oil interface: computer simulations[J]. Physical Chemistry Chemical Physics, 19(11): 7576-7586.
|