4.7 Article

Template-directed fabrication of MIL-101(Cr)/mesoporous silica composite: Layer-packed structure and enhanced performance for CO2 capture

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 513, Issue -, Pages 891-902

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2017.12.014

Keywords

Template directed synthesis; MIL-101(Cr); MCM-41; Composite material; Micro-mesoporous; CO2 capture

Funding

  1. National Natural Science Foundation of China [21476110, 21706131]
  2. Natural Science Foundation of Jiangsu Province of China [BK20151531]
  3. Key Project for University Natural Science Foundation of Jiangsu Province [14KJA530001]
  4. Prospective Joint Research Program of Jiangsu Province [BY2015005-09]
  5. Natural Science Fund for Colleges and Universities in Jiangsu Province [17KJB530004]

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A novel hybrid material constituted of MIL-101(Cr) and mesoporous silica was successfully assembled through an in-situ hydrothermal method. The MCM-41 with well-ordered mesopores acted as the structure-directing agent, which regulated the growth of MIL-101(Cr) crystals along a certain direction and restricted the expansion of framework. Meanwhile, the hydroxyl groups existed in MCM-41 preferentially coordinated with the Cr3+ centers in MOF, followed by the layer-packed arrangement of MIL-101 (Cr) nanocrystals on the surface of matrix. The structural characterizations further revealed that the introduction of MCM-41 could increase the micropore volume and specific surface area. The MIL-101 (Cr)@MCM-41 exhibited higher CO2 uptake capacity and adsorption rate compared with the original MIL-101(Cr) at 298 K and 1 bar. Via ideal adsorbed solution theory (IAST), it could be further predicted that the composite was more inclined to adsorb CO2 than N-2. The calculated isosteric heats of CO2 adsorption and desorption activation energy demonstrated that the interaction between CO2 molecules and the composite was also enhanced. The as-prepared MIL-101(Cr)@MCM-41 showed good reusability and could be easily regenerated without any reduction in its CO2 adsorption capacity. Hence, this study opened up a new pathway for designing hierarchical porous structured MOF-based materials with advanced gas separation performance. (C) 2017 Elsevier Inc. All rights reserved.

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