4.8 Article

An Interface Coassembly in Biliquid Phase: Toward Core-Shell Magnetic Mesoporous Silica Microspheres with Tunable Pore Size

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 137, Issue 41, Pages 13282-13289

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.5b05619

Keywords

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Funding

  1. State Key 973 Program of PRC [2013CB934104]
  2. NSF of China [51372041, 51422202, 51402049, 51432004]
  3. Shanghai Municipal Education Commission [13ZZ004]
  4. Program for New Century Excellent Talents in University [NCET-12-0123]
  5. Shu Guang Project [13SG02]
  6. Shanghai Education Development Foundation
  7. Shanghai Committee of Science and Technology [14ZR1400600]
  8. State Key Laboratory of ASIC System [2015KF002]
  9. Foundation of State Key Laboratory of Pollution Control and Resource Reuse (Tongji University), China [PCRRF14017]
  10. Qatar University [QUSG-CAS-MST-14\15-1]
  11. King Saud University [RGP-227]

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Core-shell magnetic mesoporous silica microspheres (Magn-MSMs) with tunable large mesopores in the shell are highly desired in biocatalysis, magnetic bioseparation, and enrichment. In this study, a shearing assisted interface coassembly in n-hexane/water biliquid systems is developed to synthesize uniform Magn-MSMs with magnetic core and mesoporous silica shell for an efficient size-selective biocatalysis. The synthesis features the rational control over the electrostatic interaction among cationic surfactant molecules, silicate oligomers, and Fe3O4@RF microspheres (RF: resorcinol formaldehyde) in the presence of shearing-regulated solubilization of n-hexane in surfactant micelles. Through this multicomponent interface coassembly, surfactant-silica mesostructured composite has been uniformly deposited on the Fe3O4@RF microspheres, and core shell Magn-MSMs are obtained after removing the surfactant and n-hexane The obtained Magn-MSMs possess excellent water dispersibility, uniform diameter (600 nm), large and tunable perpendicular mesopores (5.0-9.0 nm), high surface area (498-623 m(2)/g), large pore volume (0.91-0.98 cm(3)/g), and high magnetization (34.5-37.1 emu/g). By utilization of their large and open mesopores, Magn-MSMs with a pore size of about 9.0 nm have been demonstrated to be able to immobilize a large bioenzyme (trypsin with size of 4.0 urn) with a high loading capacity of similar to 97 mu g/mg via chemically binding. Magn-MSMs with immobilized trypsin exhibit an excellent convenient and size selective enzymolysis of low molecular proteins in the mixture of proteins of different sizes and a good recycling performance by using the magnetic separability of the microspheres.

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