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Dive into the research topics where Michael Bognitzki is active.

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Featured researches published by Michael Bognitzki.


Advanced Materials | 2001

Nanostructured Fibers via Electrospinning

Michael Bognitzki; Wolfgang Czado; Thomas Frese; Andreas K. Schaper; Michael Hellwig; Martin Steinhart; Andreas Greiner; Joachim H. Wendorff

[23] M. DeLong, Optoelectronic Materials Laboratory/Physics Department,University of Utah, Salt Lake City, USA.[24] S. Setayesh, D. Marsitzky, K. Mullen, Macromolecules 2000, 33, 2016.[25] D. Sainova, T. Miteva, H. G. Nothofer, U. Scherf, I. Glowacki, J. Ulanski,H. Fujikawa, D. Neher, Appl. Phys. Lett. 2000, 76, 1810.[26] T. Pauck, H. Bassler, J. Grimme, U. Scherf, K. Mullen, Chem. Phys. 1996,210, 219.


Advanced Materials | 2000

Polymer, Metal, and Hybrid Nano‐ and Mesotubes by Coating Degradable Polymer Template Fibers (TUFT Process)

Michael Bognitzki; Haoqing Hou; Michael Ishaque; Thomas Frese; Michael Hellwig; Christoph Schwarte; Andreas K. Schaper; Joachim H. Wendorff; Andreas Greiner

). Selective reaction with the silver atoms at the interface of the particles occurred and the coated particles were then extracted from reverse micelles. The powder of coated nanocrystals thus obtained was then dispersed in hexane, giving an optically clear solution. The size distribution was still rather large (30 %), and to reduce it a size-selected precipitation process [20] was used. In this process two solvents, such as hexane and pyridine, are mixed. The first is a good solvent and the second a poor solvent for the alkyl chains. With this solvent mixture, the larger coated particles flocculated whereas the smaller ones remain in the solution, thus providing size selection. By repeating this process several times, a homogenous clear colloidal solution of dispersed 4.3 nm nanocrystals is obtained. The concentration of nanocrystals with final size distribution around 13 % was controlled.


Advanced Materials | 2006

Preparation of sub-micrometer copper fibers via electrospinning

Michael Bognitzki; Mathias Becker; Martin Graeser; Werner Massa; Joachim H. Wendorff; Andreas K. Schaper; Dirk Weber; André Beyer; Armin Gölzhäuser; Andreas Greiner


Advanced Materials | 2007

Magnetically Anisotropic Cobalt and Iron Nanofibers via Electrospinning

Martin Graeser; Michael Bognitzki; Werner Massa; Clemens Pietzonka; Andreas Greiner; Joachim H. Wendorff


Macromolecular Materials and Engineering | 2006

Electrospinning of Fluorinated Polymers: Formation of Superhydrophobic Surfaces

Seema Agarwal; Sven Horst; Michael Bognitzki


Archive | 2002

Method for making shaped structures with internally coated cavities

Johannes Averdung; Andreas Greiner; Joachim H. Wendorff; Haoquing Hou; Michael Bognitzki; Jung Zeng


Physica Status Solidi (a) | 2012

Electrospun copper oxide nanofibers for H2S dosimetry

Jörg Hennemann; T. Sauerwald; Claus-Dieter Kohl; Thorsten Wagner; Michael Bognitzki; Andreas Greiner


Archive | 2006

Hydrophobic Flourinated Polymer Surfaces

Andreas Greiner; Seema Agarwal; Michael Bognitzki; Sven Horst


Archive | 2008

Parylene variants and methods of synthesis and use

Phillip Hanefeld; Sven Horst; Markus Meise; Michael Bognitzki; Andreas Greiner; Rakesh Kumar


Macromolecules | 2012

Synthesis, Properties, and Processing of New Siloxane-Substituted Poly(p-xylylene) via CVD

Anna K. Bier; Michael Bognitzki; Alexander Schmidt; Andreas Greiner; Emanuela Gallo; Patrick Klack; Bernhard Schartel

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Haoqing Hou

Jiangxi Normal University

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Jun Zeng

University of Marburg

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