Johannes Thunberg
Chalmers University of Technology
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Featured researches published by Johannes Thunberg.
Materials Science and Engineering: C | 2016
Volodymyr Kuzmenko; Theodoros Kalogeropoulos; Johannes Thunberg; Sara Johannesson; Daniel Hägg; Peter Enoksson; Paul Gatenholm
The problem of recovery from neurodegeneration needs new effective solutions. Tissue engineering is viewed as a prospective approach for solving this problem since it can help to develop healthy neural tissue using supportive scaffolds. This study presents effective and sustainable tissue engineering methods for creating biomaterials from cellulose that can be used either as scaffolds for the growth of neural tissue in vitro or as drug screening models. To reach this goal, nanofibrous electrospun cellulose mats were made conductive via two different procedures: carbonization and addition of multi-walled carbon nanotubes. The resulting scaffolds were much more conductive than untreated cellulose material and were used to support growth and differentiation of SH-SY5Y neuroblastoma cells. The cells were evaluated by scanning electron microscopy and confocal microscopy methods over a period of 15 days at different time points. The results showed that the cellulose-derived conductive scaffolds can provide support for good cell attachment, growth and differentiation. The formation of a neural network occurred within 10 days of differentiation, which is a promising length of time for SH-SY5Y neuroblastoma cells.
Cellulose | 2018
Abhijit Venkatesh; Johannes Thunberg; Tobias Moberg; Maria Klingberg; Lars Hammar; Anna Peterson; Christian Müller; Antal Boldizar
In order to explore the reinforcing capabilities of cellulose nanofibrils, composites containing high contents of cellulose nanofibrils were prepared through a combination of water-assisted mixing and compression moulding, the components being a cellulose nanofibril suspension and an aqueous dispersion of the polyolefin copolymer poly(ethylene-co-acrylic acid). The composite samples had dry cellulose nanofibril contents from 10 to 70 vol%. Computed tomography revealed well dispersed cellulose fibril/fibres in the polymer matrix. The highest content of 70 vol% cellulose nanofibrils increased the strength and stiffness of the composites by factors of 3.5 and 21, respectively, while maintaining an elongation at break of about 5%. The strength and strain-at-break of cellulose nanofibril composites were superior to the pulp composites at cellulose contents greater than 20 vol%. The stiffness of the composites reinforced with cellulose nanofibrils was not higher than for that of composites reinforced with cellulose pulp fibres.Graphical Abstract
Journal of Applied Polymer Science | 2012
Linda Härdelin; Johannes Thunberg; Erik Perzon; Gunnar Westman; Pernilla Walkenström; Paul Gatenholm
Cellulose | 2015
Johannes Thunberg; Theodoros Kalogeropoulos; Volodymyr Kuzmenko; Daniel Hägg; Sara Johannesson; Gunnar Westman; Paul Gatenholm
Advanced Engineering Materials | 2015
Elina Laurila; Johannes Thunberg; Stephen P. Argent; Neil R. Champness; Savannah C. Zacharias; Gunnar Westman; Lars Öhrström
Archive | 2015
Johannes Thunberg
Nordic Polymer Days, Köpenhamn | 2018
Abhijit Venkatesh; Johannes Thunberg; Tobias Moberg; Maria Klingberg; Lars Hammar; Anna Peterson; Christian Müller; Antal Boldizar
Journal of Materials Science | 2018
Lilian Forsgren; Karin Sahlin-Sjövold; Abhijit Venkatesh; Johannes Thunberg; Roland Kádár; Antal Boldizar; Gunnar Westman; Mikael Rigdahl
Proc Nordic Polymer Days, Helsinki 2016 | 2016
Johannes Thunberg; Abhijit Venkatesh; Maria Klingberg; Tobias Moberg; Antal Boldizar
Proc Materials for Tomorrow 2016 | 2016
Abhijit Venkatesh; Johannes Thunberg; Maria Klingberg; Tobias Moberg; Antal Boldizar