磁铁矿-二氧化硅核-壳纳米颗粒的电动力学性质研究

Y. Utkin, Minggong Sha
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引用次数: 1

摘要

本工作研究了不同烷氧基硅烷(四乙氧基硅烷和3-氨基丙基三乙氧基硅烷)修饰的Fe3O4纳米粒子在不同介质中的电动性能。Fe3O4/SiO2样品的ζ电位的测定值表明,在Fe3O4/氨基丙基三乙氧基硅烷的情况下,四乙氧基硅烷壳完全覆盖了纳米颗粒。所获得的关于具有各种配体的改性纳米颗粒的ζ电位的数据使得预测靶分子随后功能化的效率成为可能。在表面性质的研究中,通过清除低分子量杂质发挥着决定性作用,这些杂质可以筛选纳米颗粒的表面或与不同的电解质结合。因此,与超声分散相比,在磁力搅拌器上的分散导致样品的吸附能力增加,超声分散由于空腔中温度和压力的增加而导致核壳纳米颗粒结构的不可逆破坏。这为改性纳米颗粒在制造定制复合材料方面的实际应用开辟了前景。
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Study of Electrokinetic Properties of Magnetite – Silica Core – Shell Nanoparticles
In this work, the electrokinetic properties of Fe3O4 nanoparticles modified with various alkoxysilanes (tetraethoxysilane and 3-aminopropyltriethoxysilane) in various media were investigated. The determined values of the zeta potential of the Fe3O4/SiO2 samples indicate the complete coverage of nanoparticles with a tetraethoxysilane shell, as well as in the case of the Fe3O4/aminopropyltriethoxysilane. The data obtained on the zeta-potentials of modified nanoparticles with various ligands make it possible to predict the efficiency of subsequent functionalization by target molecules. A decisive role in the study of surface properties is played by cleaning from low molecular weight impurities that can screen the surface of nanoparticles or bind with an indifferent electrolyte. Thus, dispersion on a magnetic stirrer leads to an increase in the sorption capacity of the sample in comparison with ultrasonic dispersion, which causes irreversible destruction of the core-shell nanoparticle structure due to an increase in temperature and pressure in the cavities. This opens the prospective for practical application of modified nanoparticles for creation of tailored composite materials.
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来源期刊
WSEAS Transactions on Applied and Theoretical Mechanics
WSEAS Transactions on Applied and Theoretical Mechanics Engineering-Computational Mechanics
CiteScore
1.30
自引率
0.00%
发文量
21
期刊介绍: WSEAS Transactions on Applied and Theoretical Mechanics publishes original research papers relating to computational and experimental mechanics. We aim to bring important work to a wide international audience and therefore only publish papers of exceptional scientific value that advance our understanding of these particular areas. The research presented must transcend the limits of case studies, while both experimental and theoretical studies are accepted. It is a multi-disciplinary journal and therefore its content mirrors the diverse interests and approaches of scholars involved with fluid-structure interaction, impact and multibody dynamics, nonlinear dynamics, structural dynamics and related areas. We also welcome scholarly contributions from officials with government agencies, international agencies, and non-governmental organizations.
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