Evolution of the structure of shells of hollow submicron SiO2 particles during heat treatment

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Abstract

Hollow SiO2 particles of submicron size were synthesized and changes in the structures and morphology of their shells during heat treatment were investigated. The dependences of the shrinkage of silica shells on the annealing temperature of the particles were studied. It has been found that after annealing at 600°C, shells of hollow particles become non-porous and impermeable to liquid media.

About the authors

A. A. Zhokhov

Osipyan Institute of Solid State Physics of the Russian Academy of Sciences

Email: suhinina@issp.ac.ru
Russia, 142432, Chernogolovka

G. A. Emel’chenko

Osipyan Institute of Solid State Physics of the Russian Academy of Sciences

Email: suhinina@issp.ac.ru
Russia, 142432, Chernogolovka

N. S. Sukhinina

Osipyan Institute of Solid State Physics of the Russian Academy of Sciences

Author for correspondence.
Email: suhinina@issp.ac.ru
Russia, 142432, Chernogolovka

V. M. Masalov

Osipyan Institute of Solid State Physics of the Russian Academy of Sciences

Email: suhinina@issp.ac.ru
Russia, 142432, Chernogolovka

I. I. Khodos

Institute of Microelectronics Technology and High Purity Materials of the Russian Academy of Sciences

Email: suhinina@issp.ac.ru
Russia, 142432, Chernogolovka

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Copyright (c) 2023 Н.С. Сухинина, В.М. Масалов, И.И. Ходос, А.А. Жохов, Г.А. Емельченко

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