Tieshi Wang
Harbin Engineering University
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Publication
Featured researches published by Tieshi Wang.
Journal of Materials Chemistry | 2012
Hailong Yu; Tieshi Wang; Bo Wen; Ming-Ming Lu; Zheng Xu; Chunling Zhu; Yujin Chen; Xinyu Xue; Chunwen Sun; Mao-Sheng Cao
In the paper, we find that graphene has a strong dielectric loss, but exhibits very weak attenuation properties to electromagnetic waves due to its high conductivity. As polyaniline nanorods are perpendicularly grown on the surface of graphene by an in situ polymerization process, the electromagnetic absorption properties of the nanocomposite are significantly enhanced. The maximum reflection loss reaches −45.1 dB with a thickness of the absorber of only 2.5 mm. Theoretical simulation in terms of the Cole–Cole dispersion law shows that the Debye relaxation processes in graphene/polyaniline nanorod arrays are improved compared to polyaniline nanorods. The enhanced electromagnetic absorption properties are attributed to the unique structural characteristics and the charge transfer between graphene and polyaniline nanorods. Our results demonstrate that the deposition of other dielectric nanostructures on the surface of graphene sheets is an efficient way to fabricate lightweight materials for strong electromagnetic wave absorbents.
Journal of Applied Physics | 2013
Tieshi Wang; Zhaohong Liu; Ming-Ming Lu; Bo Wen; Qiuyun Ouyang; Yujin Chen; Chunling Zhu; Peng Gao; Chunyan Li; Mao-Sheng Cao; Lihong Qi
Graphene (G)–Fe3O4 nanohybrids were fabricated by first depositing β-FeOOH crystals with diameter of 3–5 nm on the surface of the graphene sheets. After annealing under Ar flow, β-FeOOH nanocrystals were reduced to Fe3O4 nanoparticles by the graphene sheets, and thus G–Fe3O4 nanohybrids were obtained. The Fe3O4 nanoparticles with a diameter of about 25 nm were uniformly dispersed over the surface of the graphene sheets. Moreover, compared with other magnetic materials and the graphene, the nanohybrids exhibited significantly increased electromagnetic absorption properties owing to high surface areas, interfacial polarizations, and good separation of magnetic nanoparticles. The maximum reflection loss was up to −40.36 dB for G–Fe3O4 nanohybrids with a thickness of 5.0 mm. The nanohybrids are very promising for lightweight and strong electromagnetic attenuation materials.
ACS Applied Materials & Interfaces | 2012
Chunling Zhu; Hailong Yu; Yue Zhang; Tieshi Wang; Qiuyun Ouyang; Lihong Qi; Yu-Jin Chen; Xinyu Xue
The paper describes for the first time the successful synthesis of Fe(2)O(3)/TiO(2) tube-like nanostructures, in which TiO(2) shell is of quasi-single crystalline characteristic and its thickness can be controlled through adjusting the added amount of aqueous Ti(SO(4))(2) solution. The characterization of samples obtained at different stages using transmission electron microscope indicates that the outer TiO(2) shell is changed gradually from amorphous and polycrystalline phase into quasi-single crystal under thermal actions through the Ostwald ripening process, accompanying the corrosion of the central parts of Fe(2)O(3) nanorods, and the formation of small particles separating each other, leading to the special core/shell nanorods. Furthermore, Fe(2)O(3)/TiO(2) tube-like nanostructures can be transformed into Fe(2)TiO(5) nanostructures after they are thermally treated at higher temperatures. Those nanostructures exhibit enhanced ethanol sensing properties with respect to the monocomponent. Our results imply that not only hollow nanostructures, but also a novel type of nanostructures can be fabricated by the present method for nanodevices.
Sensors and Actuators B-chemical | 2011
Yujin Chen; Gang Xiao; Tieshi Wang; Fan Zhang; Yang Ma; Peng Gao; Chunling Zhu; Endi Zhang; Zhi Xu; Qiuhong Li
Journal of Materials Chemistry | 2012
Yujin Chen; Qingshan Wang; Chunling Zhu; Peng Gao; Qiuyun Ouyang; Tieshi Wang; Yang Ma; Chunwen Sun
Sensors and Actuators B-chemical | 2011
Yujin Chen; Gang Xiao; Tieshi Wang; Fan Zhang; Yang Ma; Peng Gao; Chunling Zhu; Endi Zhang; Zhi Xu; Qiuhong Li
Sensors and Actuators B-chemical | 2012
Qiuyun Ouyang; Li Li; Qingshan Wang; Yue Zhang; Tieshi Wang; Fanna Meng; Yujin Chen; Peng Gao
Sensors and Actuators B-chemical | 2012
Hailong Yu; Li Li; Xinming Gao; Yue Zhang; Fanna Meng; Tieshi Wang; Gao Xiao; Yujin Chen; Chunling Zhu
Sensors and Actuators B-chemical | 2012
Tieshi Wang; Qingshan Wang; Chunling Zhu; Qiuyun Ouyang; Lihong Qi; Chunyan Li; Gang Xiao; Peng Gao; Yujin Chen
Sensors and Actuators B-chemical | 2013
Yujin Chen; Fanna Meng; Hailong Yu; Chunling Zhu; Tieshi Wang; Peng Gao; Qiuyun Ouyang