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Statements

Subject Item
n2:RIV%2F70883521%3A28610%2F13%3A43870254%21RIV14-MSM-28610___
rdf:type
n3:Vysledek skos:Concept
rdfs:seeAlso
http://iopscience.iop.org/1742-6596/412/1/012002/
dcterms:description
Titanium dioxide (TiO2) rod-like particles were synthesized by a simple and rapid microwave-assisted molten-salt method. The X-ray diffraction analysis and electron microscopy provided information on particle composition and morphology, respectively. It was found that during the synthesis process the crystalline phase of TiO2 transformed from anatase into rutile while the morphology changed from nanospheres into micrometer sized rod-like particles. The electrorheological (ER) properties were investigated via oscillatory shear tests. It was found that TiO2 rod-like particles based silicone oil suspensions exhibited higher ER activity than those of original anatase TiO2 nanoparticles probably due to side-by-side solid friction between particles as well as shorter time of their polarization. The changes in ER properties of rod-like particle based suspensions as a function of the applied electric field strength and particles weight fraction were also investigated. Titanium dioxide (TiO2) rod-like particles were synthesized by a simple and rapid microwave-assisted molten-salt method. The X-ray diffraction analysis and electron microscopy provided information on particle composition and morphology, respectively. It was found that during the synthesis process the crystalline phase of TiO2 transformed from anatase into rutile while the morphology changed from nanospheres into micrometer sized rod-like particles. The electrorheological (ER) properties were investigated via oscillatory shear tests. It was found that TiO2 rod-like particles based silicone oil suspensions exhibited higher ER activity than those of original anatase TiO2 nanoparticles probably due to side-by-side solid friction between particles as well as shorter time of their polarization. The changes in ER properties of rod-like particle based suspensions as a function of the applied electric field strength and particles weight fraction were also investigated.
dcterms:title
Electrorheological behaviour under oscillatory shear of TiO2 rod-like particles prepared via microwave-assisted molten-salt synthesis Electrorheological behaviour under oscillatory shear of TiO2 rod-like particles prepared via microwave-assisted molten-salt synthesis
skos:prefLabel
Electrorheological behaviour under oscillatory shear of TiO2 rod-like particles prepared via microwave-assisted molten-salt synthesis Electrorheological behaviour under oscillatory shear of TiO2 rod-like particles prepared via microwave-assisted molten-salt synthesis
skos:notation
RIV/70883521:28610/13:43870254!RIV14-MSM-28610___
n3:predkladatel
n14:orjk%3A28610
n5:aktivita
n18:S n18:P
n5:aktivity
P(ED2.1.00/03.0111), S
n5:dodaniDat
n17:2014
n5:domaciTvurceVysledku
n8:8133662 n8:8039836 n8:5474353 n8:9510087 n8:4964241
n5:druhVysledku
n16:D
n5:duvernostUdaju
n20:S
n5:entitaPredkladatele
n13:predkladatel
n5:idSjednocenehoVysledku
72449
n5:idVysledku
RIV/70883521:28610/13:43870254
n5:jazykVysledku
n10:eng
n5:klicovaSlova
rod-like particles, microwave-assisted molten salt synthesis, electrorheological suspensions, titanium dioxide, dielectric spectroscopy
n5:klicoveSlovo
n6:dielectric%20spectroscopy n6:rod-like%20particles n6:titanium%20dioxide n6:electrorheological%20suspensions n6:microwave-assisted%20molten%20salt%20synthesis
n5:kontrolniKodProRIV
[F8E44C56097D]
n5:mistoKonaniAkce
Ankara
n5:mistoVydani
Bristol
n5:nazevZdroje
Journal of Physics: Conference Series (print)
n5:obor
n21:BK
n5:pocetDomacichTvurcuVysledku
5
n5:pocetTvurcuVysledku
5
n5:projekt
n12:ED2.1.00%2F03.0111
n5:rokUplatneniVysledku
n17:2013
n5:tvurceVysledku
Pavlínek, Vladimír Sedlačík, Michal Sáha, Petr Mrlík, Miroslav Kožáková, Zuzana
n5:typAkce
n15:WRD
n5:wos
000317122500002
n5:zahajeniAkce
2012-07-02+02:00
s:issn
1742-6588
s:numberOfPages
8
n23:doi
10.1088/1742-6596/412/1/012002
n22:hasPublisher
Institute of Physics Publishing Ltd.
n4:organizacniJednotka
28610