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In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation

Publication ,  Journal Article
Tian, C; Chai, SH; Zhu, X; Wu, Z; Binder, A; Bauer, JC; Brwon, S; Chi, M; Veith, GM; Guo, Y; Dai, S
Published in: Journal of Materials Chemistry
December 28, 2012

A general in situ growth method was successfully employed to prepare lanthanide phosphate-SiO2 mesostructured cellular foams (MCFs) (LnPO4-MCFs; Ln = La, Ce, and Eu; MCFs = SiO2). These heterostructured MCFs (LnPO4-MCFs) feature binary interpenetrating LnPO4 and silica frameworks, large surface areas, and uniform mesopore diameters. They were characterized by small-angle X-ray scattering, X-ray diffraction, nitrogen sorption, and transmission electron microscopy. The essence of this in situ growth synthesis lies in the controlled heterogeneous reaction of highly dispersed lanthanide oxides embedded in MCFs with phosphate ions in solution, leading to the formation of highly dispersed crystalline phosphate nanorods (nanocrystalline LnPO4) on the walls of MCFs. The resultant heterostructured LnPO4-MCFs were used as a novel support system for gold catalysts in CO oxidation at low temperatures. Gold precursor species can be readily introduced on LnPO4 nanophases of LnPO 4-MCFs via a simple deposition-precipitation method. The resulting Au-LnPO4-MCF (2 wt% Au) catalysts exhibited high catalytic activities even below room temperatures. Because of the alteration of surface properties engineered by the in situ growth methodology and the strong interaction of metallic gold species with LnPO4, these catalysts are highly sinter-resistant. Although some cationic Au species are also present on the LnPO4-MCF surfaces, the metallic gold species are shown to be the key catalytic active sites for CO oxidation via in situ infrared spectroscopy. © 2012 The Royal Society of Chemistry.

Duke Scholars

Published In

Journal of Materials Chemistry

DOI

EISSN

1364-5501

ISSN

0959-9428

Publication Date

December 28, 2012

Volume

22

Issue

48

Start / End Page

25227 / 25235

Related Subject Headings

  • Nanoscience & Nanotechnology
  • 09 Engineering
  • 03 Chemical Sciences
 

Citation

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Tian, C., Chai, S. H., Zhu, X., Wu, Z., Binder, A., Bauer, J. C., … Dai, S. (2012). In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation. Journal of Materials Chemistry, 22(48), 25227–25235. https://doi.org/10.1039/c2jm35416k
Tian, C., S. H. Chai, X. Zhu, Z. Wu, A. Binder, J. C. Bauer, S. Brwon, et al. “In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation.” Journal of Materials Chemistry 22, no. 48 (December 28, 2012): 25227–35. https://doi.org/10.1039/c2jm35416k.
Tian C, Chai SH, Zhu X, Wu Z, Binder A, Bauer JC, et al. In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation. Journal of Materials Chemistry. 2012 Dec 28;22(48):25227–35.
Tian, C., et al. “In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation.” Journal of Materials Chemistry, vol. 22, no. 48, Dec. 2012, pp. 25227–35. Scopus, doi:10.1039/c2jm35416k.
Tian C, Chai SH, Zhu X, Wu Z, Binder A, Bauer JC, Brwon S, Chi M, Veith GM, Guo Y, Dai S. In situ growth synthesis of heterostructured LnPO4-SiO 2 (Ln = La, Ce, and Eu) mesoporous materials as supports for small gold particles used in catalytic CO oxidation. Journal of Materials Chemistry. 2012 Dec 28;22(48):25227–25235.

Published In

Journal of Materials Chemistry

DOI

EISSN

1364-5501

ISSN

0959-9428

Publication Date

December 28, 2012

Volume

22

Issue

48

Start / End Page

25227 / 25235

Related Subject Headings

  • Nanoscience & Nanotechnology
  • 09 Engineering
  • 03 Chemical Sciences