<P>Multilayered magnetite-embedded core/shell silica/titania (SiO2/TiO2) nanoparticles with an outermost silica shell (SiO2/TiO2@Fe3O4/SiO2) were synthesized and used to develop stimuli-responsive smart fluids. Benefiting from the incorporation ...
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https://www.riss.kr/link?id=A107452797
2018
-
SCIE
학술저널
10241-10249(9쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
<P>Multilayered magnetite-embedded core/shell silica/titania (SiO2/TiO2) nanoparticles with an outermost silica shell (SiO2/TiO2@Fe3O4/SiO2) were synthesized and used to develop stimuli-responsive smart fluids. Benefiting from the incorporation ...
<P>Multilayered magnetite-embedded core/shell silica/titania (SiO2/TiO2) nanoparticles with an outermost silica shell (SiO2/TiO2@Fe3O4/SiO2) were synthesized and used to develop stimuli-responsive smart fluids. Benefiting from the incorporation of the various materials, these smart fluids demonstrated electrorheological (ER) and magnetorheological (MR) activities under applied external electric (<I>E</I>) and magnetic (<I>H</I>) fields, respectively, and electromagnetorheological (EMR) characteristics with the simultaneous application of <I>E</I> and <I>H</I> fields. The inner SiO2/TiO2 core nanoparticles, embedded Fe3O4 nanoparticles and the outer SiO2 shell served as electroresponsive, magnetoresponsive and preventative materials toward corrosion, sedimentation and aggregation. The EMR performance of these fluids depended on the direction of the applied <I>E</I> and <I>H</I> fields. Notably, a 6.6-fold enhancement in EMR activity was observed with parallel application of <I>E</I> and <I>H</I> fields compared to perpendicular direction. This study demonstrates an effective approach to precisely and spatially control the rheological/mechanical properties of dual-responsive smart fluids <I>via</I> both field-induced and directional control of external fields.</P>
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