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Cellulose aero-, cryo- and xerogels: towards understanding of morphology control
by
Budtova, Tatiana
, Buchtová, Nela
in
Bioorganic Chemistry
/ carbon dioxide
/ Cellulose
/ Ceramics
/ Chemistry
/ Chemistry and Materials Science
/ Coagulation
/ Composites
/ dimethyl sulfoxide
/ Drying
/ Engineering Sciences
/ Ethanol
/ freeze drying
/ Glass
/ Ionic liquids
/ Morphology
/ Natural Materials
/ Organic Chemistry
/ Original Paper
/ Physical Chemistry
/ Polymer Sciences
/ Porosity
/ Porous materials
/ recipes
/ surface area
/ Sustainable Development
/ vacuum drying
/ Xerogels
2016
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Cellulose aero-, cryo- and xerogels: towards understanding of morphology control
by
Budtova, Tatiana
, Buchtová, Nela
in
Bioorganic Chemistry
/ carbon dioxide
/ Cellulose
/ Ceramics
/ Chemistry
/ Chemistry and Materials Science
/ Coagulation
/ Composites
/ dimethyl sulfoxide
/ Drying
/ Engineering Sciences
/ Ethanol
/ freeze drying
/ Glass
/ Ionic liquids
/ Morphology
/ Natural Materials
/ Organic Chemistry
/ Original Paper
/ Physical Chemistry
/ Polymer Sciences
/ Porosity
/ Porous materials
/ recipes
/ surface area
/ Sustainable Development
/ vacuum drying
/ Xerogels
2016
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Do you wish to request the book?
Cellulose aero-, cryo- and xerogels: towards understanding of morphology control
by
Budtova, Tatiana
, Buchtová, Nela
in
Bioorganic Chemistry
/ carbon dioxide
/ Cellulose
/ Ceramics
/ Chemistry
/ Chemistry and Materials Science
/ Coagulation
/ Composites
/ dimethyl sulfoxide
/ Drying
/ Engineering Sciences
/ Ethanol
/ freeze drying
/ Glass
/ Ionic liquids
/ Morphology
/ Natural Materials
/ Organic Chemistry
/ Original Paper
/ Physical Chemistry
/ Polymer Sciences
/ Porosity
/ Porous materials
/ recipes
/ surface area
/ Sustainable Development
/ vacuum drying
/ Xerogels
2016
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Cellulose aero-, cryo- and xerogels: towards understanding of morphology control
Journal Article
Cellulose aero-, cryo- and xerogels: towards understanding of morphology control
2016
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Overview
Highly porous, lightweight versatile cellulose materials were prepared via dissolution–coagulation and subsequent various drying routes. Cellulose was dissolved in ionic liquid/DMSO mixture and coagulation was performed in ethanol. The as prepared wet precursors were used to make materials with three different drying methods: supercritical CO
2
drying, freeze-drying and vacuum drying. The influence of cellulose concentration and drying method on the density, porosity, specific surface area and morphology of cellulose materials is presented and discussed. We provide the understanding of morphology development as a function of processing conditions and give the “recipes” for porosity control.
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