Electroresponsive Polymer–Inorganic Semiconducting Composite (MCTP–Fe3O4) Particles and Their Electrorheology
Author(s) -
Yu Zhen Dong,
Seung Hyuk Kwon,
Hyoung Jin Choi,
Pillaiyar Puthiaraj,
WhaSeung Ahn
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b02731
Subject(s) - materials science , electrorheological fluid , composite number , scanning electron microscope , silicone oil , microporous material , magnetorheological fluid , polymer , transmission electron microscopy , composite material , coprecipitation , chemical engineering , nanotechnology , magnetic field , electric field , physics , quantum mechanics , engineering
Polymer-inorganic semiconducting composite (MCTP-Fe 3 O 4 ) particles were fabricated by loading nanosized Fe 3 O 4 on the microporous covalent triazine-based polymer (MCTP) through a chemical coprecipitation method and then applied to an electrorheological (ER) material. The structural and morphological images of MCTP-Fe 3 O 4 composite were examined by scanning electron microscopy, transmission electron microscopy, and X-ray diffraction. Their magnetic property was also investigated by vibrating sample magnetometry. The chain structure formation of MCTP-Fe 3 O 4 dispersed in silicone oil under an external electric field was confirmed using an optical microscope. The ER fluid based on MCTP-Fe 3 O 4 was processed by dispersing the composite particles in an oil medium, and for comparison, an ER fluid based on pure MCTP was also prepared by the same process. The ER performance of two different ER fluids was scrutinized by a rotational rheometer, which demonstrated that MCTP-Fe 3 O 4 showed better ER characteristics than MCTP-based ER suspension.
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