Dissipative Particle Dynamics Simulations of the Self-assembly Mechanisms of Fluorinated Ordered Mesoporous Carbon in the Aqueous Phase

Na Sun , Minhua Zhang , Xiuqin Dong , Lingtao Wang

Transactions of Tianjin University ›› 2019, Vol. 25 ›› Issue (5) : 559 -566.

PDF
Transactions of Tianjin University ›› 2019, Vol. 25 ›› Issue (5) : 559 -566. DOI: 10.1007/s12209-019-00217-8
Research Article

Dissipative Particle Dynamics Simulations of the Self-assembly Mechanisms of Fluorinated Ordered Mesoporous Carbon in the Aqueous Phase

Author information +
History +
PDF

Abstract

To clarify the preparation mechanisms of fluorinated ordered mesoporous carbon materials (FOMCs), the dissipative particle dynamics method was used to simulate the self-assembly process of the amphiphilic triblock poly(ethylene oxide)-poly(propylene oxide)-poly(ethylene oxide) copolymer Pluronic F127 in the aqueous system. The self-assembly mechanisms in aqueous phase and the formation mechanisms of micropores and mesopores were investigated. It was found that the mesoporous structure of the FOMCs was formed by the hydrophobic segments of F127, while the pore wall was formed by both the hydrophilic segments and the carbon precursor in the system. The microporous structure on the pore wall was constructed by the carbon source in the hydrophilic segments’ spaces after the template was removed. Our findings could provide understanding and knowledge for the synthesis of mesoporous carbon by the self-assembly method on the mesoscopic scale.

Keywords

Mesoporous carbon / Dissipative particle dynamics / Self-assembly / Mesopore / Micropore

Cite this article

Download citation ▾
Na Sun, Minhua Zhang, Xiuqin Dong, Lingtao Wang. Dissipative Particle Dynamics Simulations of the Self-assembly Mechanisms of Fluorinated Ordered Mesoporous Carbon in the Aqueous Phase. Transactions of Tianjin University, 2019, 25(5): 559-566 DOI:10.1007/s12209-019-00217-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Stein A, Wang ZY, Fierke MA. Functionalization of porous carbon materials with designed pore architecture. Adv Mater, 2009, 21(3): 265-293.

[2]

Liang CD, Li ZJ, Dai S. Mesoporous carbon materials: synthesis and modification. Angew Chem Int Edit, 2008, 47(20): 3696-3717.

[3]

Zhao X, Wang A, Yan J, et al. Synthesis and electrochemical performance of heteroatom-incorporated ordered mesoporous carbons. Chem Mater, 2010, 22(19): 5463-5473.

[4]

Xia Y, Yang Z, Mokaya R. Mesostructured hollow spheres of graphitic N-doped carbon nanocast from spherical mesoporous silica. Phys Chem B, 2004, 108(50): 19293-19298.

[5]

Xia Y, Mokaya R. Generalized and facile synthesis approach to N-doped highly graphitic mesoporous carbon materials. Chem Mater, 2005, 17(6): 1553-1560.

[6]

Fuertes AB, Centeno TA. Mesoporous carbons with graphitic structures fabricated by using porous silica materials as templates and iron-impregnated polypyrrole as precursor. J Mater Chem, 2005, 15(10): 1079-1083.

[7]

Li W, Chen D, Li Z, et al. Nitrogen-containing carbon spheres with very large uniform mesopores: the superior electrode materials for EDLC in organic electrolyte. Carbon, 2007, 45(9): 1757-1763.

[8]

Fulvio PF, Mayes RT, Bauer JC. “One-pot” synthesis of phosphorylated mesoporous carbon heterogeneous catalysts with tailored surface acidity. Catal Today, 2012, 186(1): 12-19.

[9]

Shin Y, Fryxell G, Um W, et al. Sulfur-functionalized mesoporous carbon. Adv Funct Mater, 2007, 17(15): 2897-2901.

[10]

Yu T, Deng Y, Wang L, et al. Ordered mesoporous nanocrystalline titanium-carbide/carbon composites from in situcarbothermal reduction. Adv Mater, 2007, 19(17): 2301-2306.

[11]

Liu R, Ren Y, Shi Y, et al. Controlled synthesis of ordered mesoporous C–TiO2 nanocomposites with crystalline titania frameworks from organic-inorganic-amphiphilic coassembly. Chem Mater, 2008, 20(3): 1140-1146.

[12]

Zhai Y, Dou Y, Liu X, et al. One-pot synthesis of magnetically separable ordered mesoporous carbon. J Mater Chem, 2009, 19(20): 3292-3300.

[13]

Yao J, Li L, Song H, et al. Synthesis of magnetically separable ordered mesoporous carbons from F127/[Ni(H2O)6](NO3)2/resorcinol-formaldehyde composites. Carbon, 2009, 47(2): 436-444.

[14]

Dou J, Zeng HC. Preparation of Mo-embedded mesoporous carbon microspheres for Friedel–Crafts alkylation. J Phys Chem C, 2012, 116(14): 7767-7775.

[15]

Chen G, Zhang J, Yang S. Fabrication of hydrophobic fluorinated amorphous carbon thin films by an electrochemical route. Electrochem Commun, 2008, 10(1): 7-11.

[16]

Kim BS, Shin S, Shin SJ, et al. Control of superhydrophilicity/superhydrophobicity using silicon nanowires via electroless etching method and fluorine carbon coatings. Langmuir, 2011, 27(16): 10148-10156.

[17]

Fulvio PF, Brown SS, Adcock J, et al. Low-temperature fluorination of soft-templated mesoporous carbons for a high-power lithium/carbon fluoride battery. Chem Mater, 2011, 23(20): 4420-4427.

[18]

Hu Q, Pang J, Jiang N, et al. Direct synthesis of palladium-containing mesoporous carbon. Microporous Mesoporous Mater, 2005, 81(1–3): 149-154.

[19]

Li J, Gu J, Li H, et al. Synthesis of highly ordered Fe-containing mesoporous carbon materials using soft templating routes. Microporous Mesoporous Mater, 2010, 128(1–3): 144-149.

[20]

Wan Y, Qian X, Jia N, et al. Direct triblock-copolymer-templating synthesis of highly ordered fluorinated mesoporous carbon. Chem Mater, 2008, 20(3): 1012-1018.

[21]

Huang Y, Cai H, Feng D, et al. One-step hydrothermal synthesis of ordered mesostructured carbonaceous monoliths with hierarchical porosities. Chem Commun, 2008, 23: 2641-2643.

[22]

Hoogerbrugge PJ, Koelman JMVA. Simulating microscopic hydrodynamic phenomena with dissipative particle dynamics. Europhys Lett, 1992, 19(3): 155-160.

[23]

Koelman JMVA, Hoogerbrugge PJ. Dynamic simulations of hard-sphere suspensions under steady shear. Europhys Lett, 1993, 21(3): 363-368.

[24]

Groot RD, Warren PB. Dissipative particle dynamics: bridging the gap between atomistic and mesoscopic simulation. J Chem Phys, 1997, 107(11): 4423-4435.

[25]

Moeendarbary E, Ng TY, Zangeneh M. Dissipative particle dynamics: introduction, methodology and complex fluid applications: a review. Int J Appl Mech, 2009, 1(4): 737-763.

[26]

Saeki S, Kuwahara N, Nakata M, et al. Upper and lower critical solution temperatures in poly (ethylene glycol) solutions. Polymer, 1976, 17(8): 685-689.

[27]

Groot RD, Rabone KL. Mesoscopic simulation of cell membrane damage, morphology change and rupture by nonionic surfactants. Biophys J, 2001, 81(2): 725-736.

[28]

van Vlimmeren BAC, Maurits M, Zvelindovsky AV, et al. Simulation of 3D mesoscale structure formation in concentrated aqueous solution of the triblock polymer surfactants (ethylene oxide)13(propylene oxide)30(ethylene oxide)13 and (propylene oxide)19(ethylene oxide)33(propylene oxide)19. Application of dynamic mean-field density functional theory. Macromolecules, 1999, 32(3): 646-656.

[29]

Guo SL, Hou TJ, Xu XJ. Simulation of the phase behavior of the (EO)13(PO)30(EO)13(Pluronic L64)/water/p-xylene system using MesoDyn. J Phys Chem B, 2002, 106(43): 11397-11403.

[30]

Dong XQ, Zhao XS, Wang LT, et al. One-step synthesis of hydrophobic fluorinated ordered mesoporous carbon materials. RSC Adv, 2016, 6(54): 48870-48874.

AI Summary AI Mindmap
PDF

125

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/