Potapov Vadim, Fediuk Roman, Gorev Denis
Chief researcher, Research Geotechnological Center, Far Eastern Branch of Russian Academy of Sciences, 30, Severo-Vostochny Highway, Petropavlovsk-Kamchatsky 683002, Russia.
Full Professor, School of Engineering, Far Eastern Federal University, 8, Sukhanova Str., Vladivostok 690950, Russia.
Nanomaterials (Basel). 2020 Mar 27;10(4):624. doi: 10.3390/nano10040624.
The technological mode of obtaining amorphous SiO nanopowders based on hydrothermal solutions is proposed in this study. Polycondensation of orthosilicic acid as well as ultrafiltration membrane separation, and cryochemical vacuum sublimation were used. The characteristics of nanopowders were determined by tunneling electron microscopy, low-temperature nitrogen adsorption, X-ray diffraction, and small-angle X-ray scattering. The scheme allows to adjust density, particle diameters of nanopowders, specific surface area, as well as diameters, area and volume of the pore. Thus, the structure of nanopowders is regulated-the volume fraction of the packing of spherical particles in aggregates and agglomerates, the size of agglomerates, and the number of particles in agglomerates. The pour densities of the nanopowders depend on the SiO content in sols, which were 0.02 to 0.3 g/cm. Nanoparticles specific surface area was brought to 500 m/g by low temperature polycondensation. Nanoparticle aggregates specific pore volume (0.2-0.3 g/cm) weakly depend on powders density. The volume fraction of the packing of SiO nanoparticles in aggregates was 0.6-0.7. Solid samples of compacted nanopowders had a compressive strength of up to 337 MPa. Possible applications of hydrothermal SiO nanopowders are considered.
本研究提出了一种基于水热溶液制备非晶态SiO纳米粉末的技术模式。采用了原硅酸的缩聚反应、超滤膜分离以及低温化学真空升华法。通过隧道电子显微镜、低温氮吸附、X射线衍射和小角X射线散射来测定纳米粉末的特性。该方案能够调节纳米粉末的密度、粒径、比表面积以及孔隙的直径、面积和体积。因此,可以调控纳米粉末的结构——聚集体和团聚体中球形颗粒堆积的体积分数、团聚体的尺寸以及团聚体中颗粒的数量。纳米粉末的松装密度取决于溶胶中SiO的含量,其范围为0.02至0.3 g/cm。通过低温缩聚使纳米颗粒的比表面积达到500 m²/g。纳米颗粒聚集体的比孔容(0.2 - 0.3 cm³/g)对粉末密度的依赖性较弱。聚集体中SiO纳米颗粒堆积的体积分数为0.6 - 0.7。压实纳米粉末的固体样品抗压强度高达337 MPa。文中还考虑了水热SiO纳米粉末的可能应用。