Syntheses of complex mesoporous silicas using mixtures of nonionic block copolymer surfactants: Understanding formation of different structures using solubility parameters

Typeset version

 

TY  - JOUR
  - Chen, L.; Xu, J.; Zhang, W.-H.; Holmes, J. D.; Morris, M. A.
  - 2011
  - January
  - Journal of Colloid and Interface Science
  - Syntheses of complex mesoporous silicas using mixtures of nonionic block copolymer surfactants: Understanding formation of different structures using solubility parameters
  - Published
  - ()
  - 353
  - 169
  - 180
  - The use of block copolymer (BCP) nonionic surfactant mixtures (including Pluronic, Brij and Tetronic types) as templates for synthesizing porous silica materials of mixed pore sizes is explored here. These systems have important applications because combinations of pore sizes can allow rapid access of reactants (via large pores) whilst providing the very high surface area of small pores for higher reaction rates or size selectivity. Examples of the materials prepared here include pore size bimodal hexagonal p6mm channel structures and cubic Im3m cage structures. It is shown here that the chemical similarity, as indicated by the solubility parameter, of the surfactants is an important factor in determining the pore structure and size distribution (PSD) of the pores. Monomodal pore structures are usually obtained when the solubility parameters of the surfactants are similar and bimodal pore structures when the solubility parameters are reasonably different. When the interaction parameter is very high disordered porous systems are formed. Ternary co-surfactant systems, e.g. P123¿25R4¿P65, can also yield highly ordered bimodal mesoporous silica with a hexagonal structure.
  - http://www.elsevier.com/wps/find/journaldescription.cws_home/622861/description#description
DA  - 2011/01
ER  - 
@article{V67658043,
   = {Chen, L. and  Xu, J. and  Zhang, W.-H. and  Holmes, J. D. and  Morris, M. A.},
   = {2011},
   = {January},
   = {Journal of Colloid and Interface Science},
   = {Syntheses of complex mesoporous silicas using mixtures of nonionic block copolymer surfactants: Understanding formation of different structures using solubility parameters},
   = {Published},
   = {()},
   = {353},
  pages = {169--180},
   = {{The use of block copolymer (BCP) nonionic surfactant mixtures (including Pluronic, Brij and Tetronic types) as templates for synthesizing porous silica materials of mixed pore sizes is explored here. These systems have important applications because combinations of pore sizes can allow rapid access of reactants (via large pores) whilst providing the very high surface area of small pores for higher reaction rates or size selectivity. Examples of the materials prepared here include pore size bimodal hexagonal p6mm channel structures and cubic Im3m cage structures. It is shown here that the chemical similarity, as indicated by the solubility parameter, of the surfactants is an important factor in determining the pore structure and size distribution (PSD) of the pores. Monomodal pore structures are usually obtained when the solubility parameters of the surfactants are similar and bimodal pore structures when the solubility parameters are reasonably different. When the interaction parameter is very high disordered porous systems are formed. Ternary co-surfactant systems, e.g. P123¿25R4¿P65, can also yield highly ordered bimodal mesoporous silica with a hexagonal structure.}},
   = {http://www.elsevier.com/wps/find/journaldescription.cws_home/622861/description#description},
  source = {IRIS}
}
AUTHORSChen, L.; Xu, J.; Zhang, W.-H.; Holmes, J. D.; Morris, M. A.
YEAR2011
MONTHJanuary
JOURNAL_CODEJournal of Colloid and Interface Science
TITLESyntheses of complex mesoporous silicas using mixtures of nonionic block copolymer surfactants: Understanding formation of different structures using solubility parameters
STATUSPublished
TIMES_CITED()
SEARCH_KEYWORD
VOLUME353
ISSUE
START_PAGE169
END_PAGE180
ABSTRACTThe use of block copolymer (BCP) nonionic surfactant mixtures (including Pluronic, Brij and Tetronic types) as templates for synthesizing porous silica materials of mixed pore sizes is explored here. These systems have important applications because combinations of pore sizes can allow rapid access of reactants (via large pores) whilst providing the very high surface area of small pores for higher reaction rates or size selectivity. Examples of the materials prepared here include pore size bimodal hexagonal p6mm channel structures and cubic Im3m cage structures. It is shown here that the chemical similarity, as indicated by the solubility parameter, of the surfactants is an important factor in determining the pore structure and size distribution (PSD) of the pores. Monomodal pore structures are usually obtained when the solubility parameters of the surfactants are similar and bimodal pore structures when the solubility parameters are reasonably different. When the interaction parameter is very high disordered porous systems are formed. Ternary co-surfactant systems, e.g. P123¿25R4¿P65, can also yield highly ordered bimodal mesoporous silica with a hexagonal structure.
PUBLISHER_LOCATION
ISBN_ISSN
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URLhttp://www.elsevier.com/wps/find/journaldescription.cws_home/622861/description#description
DOI_LINK
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