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Dive into the research topics where Emma Östmark is active.

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Featured researches published by Emma Östmark.


ACS Applied Materials & Interfaces | 2009

ARGET ATRP for versatile grafting of cellulose using various monomers.

Susanne Hansson; Emma Östmark; Anna Carlmark; Eva Malmström

In recent years, cellulose-based materials have attracted significant attention. To broaden the application areas for cellulose, polymers are often grafted to/from the surface to modify its properties. This study applies ARGET (activators regenerated by electron transfer) ATRP (atom transfer radical polymerization) when straightforwardly grafting methyl methacrylate (MMA), styrene (St), and glycidyl methacrylate (GMA) from cellulose in the form of conventional filter paper in the presence of a sacrificial initiator. The free polymer, formed from the free initiator in parallel to the grafting, was characterized by (1)H NMR and SEC, showing that sufficient control is achieved. However, the analyses also indicated that the propagation from the surface cannot be neglected compared to the propagation of the free polymer at higher targeted molecular weights, which is an assumption often made. The grafted filter papers were evaluated with FT-IR, suggesting that the amount of polymer on the surface increased with increasing monomer conversion, which the FE-SEM micrographs of the substrates also demonstrated. Water contact angle (CA) measurements implied that covering layers of PMMA and PS were formed on the cellulose substrate, making the surface hydrophobic, in spite of low DPs. The CA of the PGMA-grafted filter papers revealed that, by utilizing either aprotic or protic solvents when washing the substrates, it was possible to either preserve or hydrolyze the epoxy groups. Independent of the solvent used, all grafted filter papers were essentially colorless after the washing procedure because of the low amount of copper required when performing ARGET ATRP. Nevertheless, surface modification of cellulose via ARGET ATRP truly facilitates the manufacturing since no thorough freeze-thaw degassing procedures are required.


ACS Applied Materials & Interfaces | 2009

Superhydrophobic and self-cleaning bio-fiber surfaces via ATRP and subsequent postfunctionalization

Daniel Nyström; Josefina Lindqvist; Emma Östmark; Per Antoni; Anna Carlmark; Anders Hult; Eva Malmström

Superhydrophobic and self-cleaning cellulose surfaces have been obtained via surface-confined grafting of glycidyl methacrylate using atom transfer radical polymerization combined with postmodification reactions. Both linear and branched graft-on-graft architectures were used for the postmodification reactions to obtain highly hydrophobic bio-fiber surfaces by functionalization of the grafts with either poly(dimethylsiloxane), perfluorinated chains, or alkyl chains, respectively. Postfunctionalization using alkyl chains yielded results similar to those of surfaces modified by perfluorination, in terms of superhydrophobicity, self-cleaning properties, and the stability of these properties over time. In addition, highly oleophobic surfaces have been obtained when modification with perfluorinated chains was performed.


Biomacromolecules | 2008

Intelligent dual-responsive cellulose surfaces via surface-initiated ATRP.

Josefina Lindqvist; Daniel Nyström; Emma Östmark; Per Antoni; Anna Carlmark; Mats Johansson; Anders Hult; Eva Malmström


Journal of Polymer Science Part A | 2004

Dendrimers as scaffolds for multifunctional reversible addition–fragmentation chain transfer agents: Syntheses and polymerization

Xiaojuan Hao; Camilla Nilsson; Martin Jesberger; Martina H. Stenzel; Eva Malmström; Thomas P. Davis; Emma Östmark; Christopher Barner-Kowollik


Biomacromolecules | 2007

Comb Polymers Prepared by ATRP from Hydroxypropyl Cellulose

Emma Östmark; Simon Harrisson; Karen L. Wooley; Eva Malmström


Macromolecules | 2005

Thiol End-Functionalization of Poly(ε-caprolactone), Catalyzed by Candida antarctica Lipase B

Cecilia Hedfors; Emma Östmark; Eva Malmström; Karl Hult; Mats Martinelle


Chemical Communications | 2006

Superhydrophobic bio-fibre surfaces via tailored grafting architecture

Daniel Nyström; Josefina Lindqvist; Emma Östmark; Anders Hult; Eva Malmström


Macromolecules | 2008

Unimolecular Nanocontainers Prepared by ROP and Subsequent ATRP from Hydroxypropylcellulose

Emma Östmark; Daniel Nyström; Eva Malmström


Biomacromolecules | 2007

Dendronized Hydroxypropyl Cellulose : Synthesis and Characterization of Biobased Nanoobjects

Emma Östmark; Josefina Lindqvist; Daniel Nyström; Eva Malmström


Langmuir | 2005

Dendritic Structures Based on Bis(hydroxymethyl)propionic Acid as Platforms for Surface Reactions

Emma Östmark; Lubica Macakova; Tommaso Auletta; Michael Malkoch; Eva Malmström; Eva Blomberg

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Eva Malmström

Royal Institute of Technology

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Daniel Nyström

Royal Institute of Technology

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Josefina Lindqvist

Royal Institute of Technology

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Mats Johansson

Royal Institute of Technology

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Anders Hult

Royal Institute of Technology

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Sara Olsson

SP Technical Research Institute of Sweden

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Anna Carlmark

Royal Institute of Technology

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Mats Westin

SP Technical Research Institute of Sweden

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Per Antoni

Royal Institute of Technology

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Camilla Nilsson

Royal Institute of Technology

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