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NiO Nanoparticle Synthesis Using a Triblock Copolymer: Enhanced Magnetization and High Specific Capacitance of Electrodes Prepared from the Powder
Author(s) -
Soumi Chatterjee,
Ramaprasad Maiti,
Milon Miah,
Shyamal K. Saha,
D. Chakravorty
Publication year - 2017
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.6b00384
Subject(s) - materials science , non blocking i/o , ethylene glycol , nanoparticle , copolymer , x ray photoelectron spectroscopy , magnetization , chemical engineering , nickel oxide , cyclic voltammetry , alkoxy group , electrochemistry , nickel , electrode , analytical chemistry (journal) , nanotechnology , polymer , chemistry , composite material , organic chemistry , metallurgy , catalysis , engineering , quantum mechanics , alkyl , physics , magnetic field
Nickel oxide nanoparticles of diameter ∼21 nm were prepared by a sol-gel method using the triblock copolymer poly(ethylene glycol)- b -(propylene glycol)- b -(ethylene glycol). X-ray photoelectron spectroscopy analysis showed the presence of Ni 2+ and Ni 3+ ions in the material. The electrical conductivity of this material was due to small polaron hopping between Ni 2+ and Ni 3+ sites. The magnetization shown by these nanoparticles was much higher than that reported in the literature. This is ascribed to the presence of Ni 3+ ions with uncompensated spin moments. Spin-glass behavior was exhibited by the material at 10.7 K. The electrochemical characterization of electrodes comprising of these NiO nanoparticles using cyclic voltammetric measurements showed a specific capacitance value of 810 F/g, the highest reported for this material. These materials will thus form one of the useful multifunctional systems.

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