Hygroscopicity of Gel-Forming Composite Materials: Thermodynamic Assessment and Technological Significance

Hygroscopicity is an important technological property of composite materials for the conservation and treatment of water in modern technologies for sustainable green environment and agriculture. Using a thermodynamic approach, this study analyzes the hygroscopicity of composite gel-forming soil conditioners as a function of water activity and temperature. A simple and generally available method of water thermo-desorption is proposed for the quantitative assessment of hygroscopicity, dispersity and potential resistance of composite materials to osmotic collapse. It is based on the fundamental thermodynamic dependence of water potential and temperature of the dried material in a thermodynamic reservoir (laboratory) with constant relative humidity. The hygroscopicity of the studied composite materials in humid air (relative humidity over 90%) reaches a water content of 80–130% (wt); however, this water has too high retention energy and cannot be consumed by green plants, which calls into question the technology of obtaining water from the air using hygroscopic materials. The high hygroscopicity of hydrogels and its dynamics, depending on the controlling factors of temperature and air humidity, must necessarily be taken into account in the materials trade and in the technological calculation of doses for the use of these materials in sustainable agriculture and landscaping. © 2022 by the authors.

Authors
Smagin A.V. , Sadovnikova N.B. , Belyaeva E.A.
Publisher
Multidisciplinary Digital Publishing Institute (Basel)
Number of issue
9
Language
English
Status
Published
Number
269
Volume
6
Year
2022
Organizations
  • 1 Soil Science Department, Lomonosov Moscow State University, GSP-1, Leninskie Gory, Moscow, 119991, Russian Federation
  • 2 Institute of Forest Science, Russian Academy of Sciences (ILAN), 21, Sovetskaya, Moscow, 143030, Russian Federation
  • 3 Center for Mathematical Modeling and Design of Sustainable Ecosystems, Peoples’ Friendship University of Russia, Miklukho-Maklaya 6, Moscow, 117198, Russian Federation
Keywords
composite materials; dispersity; hygroscopicity; osmotic stress; stability of gel structures; water retention energy; water thermodynamics

Other records

Tsvirkun O.V., Samoilovich E.O., Tikhonova N.T., Gerasimova A.G., Turaeva N.V., Ermolovich M.A., Semeiko G.V.
Russian Journal of Infection and Immunity. Saint Petersburg Pasteur Institute. Vol. 12. 2022. P. 909-918