Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals

In the present study, Fe 3O 4/ZnO core/shell nanocrystals (NCs) are synthesized via seed-meditated growth approach in nonhydrolytic condition. The controlling process of thermal pyrolysis of zinc acetate (ZnAc) renders a condition to overgrow ZnO layer on the surface of Fe 3O 4 NCs (seeds). The tran...

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Main Authors: Huang, N., Chiu, W., Khiew, P., Cloke, M., Isa, D., Lim, H., Tan, T., Radiman, S., Abd-Shukor, R., Hamid, M.A.A., Chia, C.
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Published: 2010
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Online Access:http://eprints.um.edu.my/5286/
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spelling my.um.eprints.52862013-04-01T02:23:11Z http://eprints.um.edu.my/5286/ Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals Huang, N. Chiu, W. Khiew, P. Cloke, M. Isa, D. Lim, H. Tan, T. Radiman, S. Abd-Shukor, R. Hamid, M.A.A. Chia, C. Q Science (General) QC Physics In the present study, Fe 3O 4/ZnO core/shell nanocrystals (NCs) are synthesized via seed-meditated growth approach in nonhydrolytic condition. The controlling process of thermal pyrolysis of zinc acetate (ZnAc) renders a condition to overgrow ZnO layer on the surface of Fe 3O 4 NCs (seeds). The transmission electron microscope (TEM) micrograph shows that Fe 3O 4/ZnO NCs are spherical in shape, highly monodispersed, and exhibiting responding shell thickness by varying the mole ratio of seed to shell precursor. The X-ray powder diffraction patterns (XRD) for Fe 3O 4/ZnO NCs reveal the coexistence of both Fe 3O 4 and ZnO crystal structures, which the patterns can be well indexed with the standard powder diffraction patterns of both materials. The NCs exhibit superparamagnetism corresponding to an external magnet field provided by vibrating sample magnetometer (VSM) and show red-shift phenomenon under UV excitation at room temperature. The NCs are magnetically separable upon application of 0.6 T magnet, which shows that high potentiality of the NCs to be used as regenerable catalyst material. © 2010 American Chemical Society. 2010 Article PeerReviewed Huang, N. and Chiu, W. and Khiew, P. and Cloke, M. and Isa, D. and Lim, H. and Tan, T. and Radiman, S. and Abd-Shukor, R. and Hamid, M.A.A. and Chia, C. (2010) Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals. Journal of Physical Chemistry C, 114 (18). pp. 8212-8218. ISSN 19327447
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic Q Science (General)
QC Physics
spellingShingle Q Science (General)
QC Physics
Huang, N.
Chiu, W.
Khiew, P.
Cloke, M.
Isa, D.
Lim, H.
Tan, T.
Radiman, S.
Abd-Shukor, R.
Hamid, M.A.A.
Chia, C.
Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
description In the present study, Fe 3O 4/ZnO core/shell nanocrystals (NCs) are synthesized via seed-meditated growth approach in nonhydrolytic condition. The controlling process of thermal pyrolysis of zinc acetate (ZnAc) renders a condition to overgrow ZnO layer on the surface of Fe 3O 4 NCs (seeds). The transmission electron microscope (TEM) micrograph shows that Fe 3O 4/ZnO NCs are spherical in shape, highly monodispersed, and exhibiting responding shell thickness by varying the mole ratio of seed to shell precursor. The X-ray powder diffraction patterns (XRD) for Fe 3O 4/ZnO NCs reveal the coexistence of both Fe 3O 4 and ZnO crystal structures, which the patterns can be well indexed with the standard powder diffraction patterns of both materials. The NCs exhibit superparamagnetism corresponding to an external magnet field provided by vibrating sample magnetometer (VSM) and show red-shift phenomenon under UV excitation at room temperature. The NCs are magnetically separable upon application of 0.6 T magnet, which shows that high potentiality of the NCs to be used as regenerable catalyst material. © 2010 American Chemical Society.
format Article
author Huang, N.
Chiu, W.
Khiew, P.
Cloke, M.
Isa, D.
Lim, H.
Tan, T.
Radiman, S.
Abd-Shukor, R.
Hamid, M.A.A.
Chia, C.
author_facet Huang, N.
Chiu, W.
Khiew, P.
Cloke, M.
Isa, D.
Lim, H.
Tan, T.
Radiman, S.
Abd-Shukor, R.
Hamid, M.A.A.
Chia, C.
author_sort Huang, N.
title Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
title_short Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
title_full Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
title_fullStr Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
title_full_unstemmed Heterogeneous seeded growth: synthesis and characterization of bifunctional Fe 3O 4/ZnO core/shell nanocrystals
title_sort heterogeneous seeded growth: synthesis and characterization of bifunctional fe 3o 4/zno core/shell nanocrystals
publishDate 2010
url http://eprints.um.edu.my/5286/
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score 13.160551