Polyimide (PI)-based aerogels have been widely applied to aviation, automobiles, and thermal insulation because of their high porosity, low density, and excellent thermal insulating ability. However, the fabrication of PI aerogels is still restricted to the traditional molding process, and it is often challenging to prepare high-performance PI aerogels with complex 3D structures. Interestingly, renewable nanomaterials such as cellulose nanocrystals (CNCs) may provide a unique approach for 3D printing, mechanical reinforcement, and shape fidelity of the PI aerogels. Herein, we proposed a facile water-based 3D printable ink with sustainable nanofillers, cellulose nanocrystals (CNCs). Polyamic acid was first mixed with triethylamine to form an...
In order to continue the development of inks valid for cold extrusion 3D printing, waterborne, polyu...
Nanocellulose extracted from natural resources are used extensively in biomedical field. They have p...
The authors would like to acknowledge the Academy of Finland funding; No. 327248 (ValueBiomat), 3278...
Cellulose nanofibrils isolated from trees have the potential to be used as raw material for future s...
Polyimide aerogels are a nanoporous material made by extracting the liquid portion of a wet gel and ...
Multiphase (emulsion) gels with internal phase fractions between 0.1 and 0.5 were formulated at low ...
New ink compositions for direct ink writing (DIW) printing of hydrogels, combining superior rheologi...
Aerogel objects inspired by plant cell wall components and structures were fabricated using extrusio...
We report on the development of natural-based, composite hydrogel inks for Digital Light Processing ...
Silica aerogels are attractive materials for various applications due to their exceptional performan...
Multiphase (emulsion) gels with internal phase fractions between 0.1 and 0.5 were formulated at low ...
This study aimed to improve the thermal management and mechanical performance of cellulose nanofibri...
This study presents a novel, green, and efficient way of preparing crosslinked aerogels from cellulo...
Cellulose nanocrystals (CNCs) with >2000 photoactive groups on each can act as highly efficient i...
Since 3D printing has developed into a highly available method throughout industry and research, num...
In order to continue the development of inks valid for cold extrusion 3D printing, waterborne, polyu...
Nanocellulose extracted from natural resources are used extensively in biomedical field. They have p...
The authors would like to acknowledge the Academy of Finland funding; No. 327248 (ValueBiomat), 3278...
Cellulose nanofibrils isolated from trees have the potential to be used as raw material for future s...
Polyimide aerogels are a nanoporous material made by extracting the liquid portion of a wet gel and ...
Multiphase (emulsion) gels with internal phase fractions between 0.1 and 0.5 were formulated at low ...
New ink compositions for direct ink writing (DIW) printing of hydrogels, combining superior rheologi...
Aerogel objects inspired by plant cell wall components and structures were fabricated using extrusio...
We report on the development of natural-based, composite hydrogel inks for Digital Light Processing ...
Silica aerogels are attractive materials for various applications due to their exceptional performan...
Multiphase (emulsion) gels with internal phase fractions between 0.1 and 0.5 were formulated at low ...
This study aimed to improve the thermal management and mechanical performance of cellulose nanofibri...
This study presents a novel, green, and efficient way of preparing crosslinked aerogels from cellulo...
Cellulose nanocrystals (CNCs) with >2000 photoactive groups on each can act as highly efficient i...
Since 3D printing has developed into a highly available method throughout industry and research, num...
In order to continue the development of inks valid for cold extrusion 3D printing, waterborne, polyu...
Nanocellulose extracted from natural resources are used extensively in biomedical field. They have p...
The authors would like to acknowledge the Academy of Finland funding; No. 327248 (ValueBiomat), 3278...