Controlled Synthesis and Morphology-Dependent Electromagnetic Properties of Hierarchical Cobalt Assemblies
Hierarchical cobalt assemblies such as spheres, flowers with dendritic petals, and flowers with sharp petals are successfully synthesized via a facile liquid-phase reduction method by simply adjusting the reaction conditions. The morphology evolution process and transformation mechanism from spheres...
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Published in | Journal of physical chemistry. C Vol. 114; no. 35; pp. 14826 - 14830 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
American Chemical Society
09.09.2010
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Subjects | |
Online Access | Get full text |
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Abstract | Hierarchical cobalt assemblies such as spheres, flowers with dendritic petals, and flowers with sharp petals are successfully synthesized via a facile liquid-phase reduction method by simply adjusting the reaction conditions. The morphology evolution process and transformation mechanism from spheres to dendrites and finally to flowers have been systematically investigated. It is determined that coercivity H c depends more on sample size than on shape anisotropy, while saturation magnetization M s is greatly affected by pinned surface magnetic moment. Even at a thinner thickness, as-synthesized cobalt samples exhibit stronger microwave absorbing ability compared with reported cobalt in the same frequency band. Especially, the cobalt flowers with dendritic petals exhibit the strongest absorption in middle frequency because incident wave and reflected wave are totally canceled at matching thickness. The architectural design of material morphologies is critical for improving properties toward future application. |
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AbstractList | Hierarchical cobalt assemblies such as spheres, flowers with dendritic petals, and flowers with sharp petals are successfully synthesized via a facile liquid-phase reduction method by simply adjusting the reaction conditions. The morphology evolution process and transformation mechanism from spheres to dendrites and finally to flowers have been systematically investigated. It is determined that coercivity H c depends more on sample size than on shape anisotropy, while saturation magnetization M s is greatly affected by pinned surface magnetic moment. Even at a thinner thickness, as-synthesized cobalt samples exhibit stronger microwave absorbing ability compared with reported cobalt in the same frequency band. Especially, the cobalt flowers with dendritic petals exhibit the strongest absorption in middle frequency because incident wave and reflected wave are totally canceled at matching thickness. The architectural design of material morphologies is critical for improving properties toward future application. |
Author | Wang, Xiaohong Wang, Chao Wang, Jinyu Zhang, Xiaolin Hu, Surong Han, Xijiang Du, Yunchen Xu, Ping Zhang, Tao |
Author_xml | – sequence: 1 givenname: Chao surname: Wang fullname: Wang, Chao – sequence: 2 givenname: Xijiang surname: Han fullname: Han, Xijiang email: hanxj63@yahoo.com.cn, pxu@hit.edu.cn – sequence: 3 givenname: Xiaolin surname: Zhang fullname: Zhang, Xiaolin – sequence: 4 givenname: Surong surname: Hu fullname: Hu, Surong – sequence: 5 givenname: Tao surname: Zhang fullname: Zhang, Tao – sequence: 6 givenname: Jinyu surname: Wang fullname: Wang, Jinyu – sequence: 7 givenname: Yunchen surname: Du fullname: Du, Yunchen – sequence: 8 givenname: Xiaohong surname: Wang fullname: Wang, Xiaohong – sequence: 9 givenname: Ping surname: Xu fullname: Xu, Ping email: hanxj63@yahoo.com.cn, pxu@hit.edu.cn |
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Snippet | Hierarchical cobalt assemblies such as spheres, flowers with dendritic petals, and flowers with sharp petals are successfully synthesized via a facile... |
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Title | Controlled Synthesis and Morphology-Dependent Electromagnetic Properties of Hierarchical Cobalt Assemblies |
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