Hierarchical nanofabrication of microporous crystals with ordered mesoporosity
- Authors
- Fan, Wei; Snyder, Mark A.; Kumar, Sandeep; Lee, Pyung-Soo; Yoo, Won Cheol; McCormick, Alon V.; Penn, R. Lee; Stein, Andreas; Tsapatsis, Michael
- Issue Date
- Dec-2008
- Publisher
- NATURE PUBLISHING GROUP
- Keywords
- CONFINED SPACE SYNTHESIS; ZEOLITE SINGLE-CRYSTALS; CONTROLLED GROWTH; ZSM-5 ZEOLITE; MFI ZEOLITE; SILICA; NANOPARTICLES; TPA-SILICALITE-1; SCATTERING; ACID
- Citation
- NATURE MATERIALS, v.7, no.12, pp 984 - 991
- Pages
- 8
- Indexed
- SCIE
SCOPUS
- Journal Title
- NATURE MATERIALS
- Volume
- 7
- Number
- 12
- Start Page
- 984
- End Page
- 991
- URI
- https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/41942
- DOI
- 10.1038/nmat2302
- ISSN
- 1476-1122
1476-4660
- Abstract
- Shaped zeolite nanocrystals and larger zeolite particles with three-dimensionally ordered mesoporous (3DOm) features hold exciting technological implications for manufacturing thin, oriented molecular sieve films and realizing new selective, molecularly accessible and robust catalysts. A recognized means for controlled synthesis of such nanoparticulate and imprinted materials revolves around templating approaches, yet identification of an appropriately versatile template has remained elusive. Because of their highly interconnected pore space, ordered mesoporous carbon replicas serve as conceptually attractive materials for carrying out confined synthesis of zeolite crystals. Here, we demonstrate how a wide range of crystal morphologies can be realized through such confined growth within 3DOm carbon, synthesized by replication of colloidal crystals composed of size-tunable (about 10-40 nm) silica nanoparticles. Confined crystal growth within these templates leads to size-tunable, uniformly shaped silicalite-1 nanocrystals as well as 3DOm-imprinted single-crystal zeolite particles. In addition, novel crystal morphologies, consisting of faceted crystal outgrowths from primary crystalline particles have been discovered, providing new insight into constricted crystal growth mechanisms underlying confined synthesis.
- Files in This Item
-
Go to Link
- Appears in
Collections - COLLEGE OF SCIENCE AND CONVERGENCE TECHNOLOGY > DEPARTMENT OF CHEMICAL AND MOLECULAR ENGINEERING > 1. Journal Articles

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.