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Dive into the research topics where Yaoyu Wang is active.

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Featured researches published by Yaoyu Wang.


New Journal of Chemistry | 2016

Development of a Fe3O4@SnO2:Er3+,Yb3+–APTES nanocarrier for microwave-triggered controllable drug release, and the study of the loading and release mechanisms using microcalorimetry

Hongxia Peng; Bin Cui; Weiwei Zhao; Xiaotong Zhao; Yingsai Wang; Zhuguo Chang; Yaoyu Wang

We fabricated an efficient microwave-triggered controlled-release nanocarrier system using Fe3O4@SnO2:Er3+,Yb3+–APTES multifunctional core–shell nanoparticles. We also studied the drug loading and release mechanisms by means of microcalorimetry. The thermodynamic parameter values for loading (ΔH = −42.64 kJ mol−1, ΔS = −452.98 J mol−1 K−1) showed that the main interaction between the nanocarrier and drug molecules is relatively weak hydrogen bonding. The molar enthalpy (ΔH) of the drug-release process was 10.30 kJ mol−1, which indicates an endothermic process. This suggests that drug release can be controlled by microwave heating. When energy provided from the medium rises above the hydrogen bond energy, the hydrogen bond breaks and the nanocarrier begins to release the drug. The release profile can be controlled by the duration and number of cycles of microwave application. Approximately 71% of ibuprofen was released after four cycles. The microwave-stimulated, thermally sensitive, multifunctional nanoparticles therefore represent a new system with potential utility for on-command drug release, and the fluorescence properties allow in situ monitoring.


Scripta Materialia | 2014

Fabrication of submicron La2O3-coated BaTiO3 particles and fine-grained ceramics with temperature-stable dielectric properties

Yan Wang; Bin Cui; Yu Liu; Xiaotong Zhao; Zhenyu Hu; Qiangqiang Yan; Tong Wu; Lili Zhao; Yaoyu Wang


Journal of Alloys and Compounds | 2017

A microwave-triggered controllable drug delivery system based on hollow-mesoporous cobalt ferrite magnetic nanoparticles

Ping Chen; Bin Cui; Xiarong Cui; Weiwei Zhao; Yumei Bu; Yaoyu Wang


Journal of the American Ceramic Society | 2016

Core–Shell Structure and Dielectric Properties of Ba0.991Bi0.006TiO3@Nb2O5–Co3O4 Ceramics

Yu Liu; Bin Cui; Yan Wang; Rong Ma; Mengqian Shangguan; Xiaotong Zhao; Shuhao Wang; Qianyu Li; Yaoyu Wang


Journal of Alloys and Compounds | 2017

A novel double-coating approach to prepare fine-grained BaTiO3@La2O3@SiO2 dielectric ceramics for energy storage application

Rong Ma; Bin Cui; Mengqian Shangguan; Shuhao Wang; Yanjun Wang; Zhuguo Chang; Yaoyu Wang


Journal of The European Ceramic Society | 2015

A novel precipitation-based synthesis for the formation of X8R-type dielectrics composition based on monodispersed submicron Ba0.991Bi0.006TiO3@Nb2O5 particles

Yu Liu; Bin Cui; Yan Wang; Xiaotong Zhao; Qiangqiang Yan; Tong Wu; Lili Zhao; Yaoyu Wang


Materials Letters | 2016

Multifunctional Fe3O4@WO3@mSiO2–APTES nanocarrier for targeted drug delivery and controllable release with microwave irradiation triggered by WO3

Weiwei Zhao; Bin Cui; Hongjin Qiu; Ping Chen; Yaoyu Wang


Ceramics International | 2014

Phase composition, microstructure, and dielectric properties of dysprosium-doped Ba(Zr0.1Ti0.9)O3-based Y5V ceramics with high permittivity

Yan Wang; Bin Cui; Lulu Zhang; Zhenyu Hu; Yaoyu Wang


Ceramics International | 2016

Production of Ba0.991Bi0.006TiO3@ZnO–B2O3–SiO2 ceramics with a high dielectric constant, a core–shell structure, and a fine-grained microstructure by means of a sol-precipitation method

Mengqian Shangguan; Bin Cui; Rong Ma; Yaoyu Wang


Materials Letters | 2013

Low temperature sintering of high permittivity BaTiO3 based X8R ceramics doped with Li2O–Bi2O3–B2O3 frit

Zhenyu Hu; Bin Cui; Shuai Jing; Yaoyu Wang

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Xiarong Cui

University of California

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