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Dive into the research topics where Peter Dr. Strohriegl is active.

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Featured researches published by Peter Dr. Strohriegl.


Organic Photorefractives, Photoreceptors, and Nanocomposites | 2000

Variation of the glass transition temperature in organic photorefractive materials: plasticizer versus novel synthetic approaches

Andre Leopold; Uwe Hofmann; M. Grasruck; Stephan J. Zilker; Dietrich Haarer; Jolita Ostrauskaite; Juozas V. Grazulevicius; Mukundan Thelakkat; Christoph Hohle; Peter Dr. Strohriegl; Hans-Werner Schmidt; Andreas Bacher; Donal D. C. Bradley; M. Redecker; Michael Inbasekaran; Weishi W. Wu; Edmund P. Woo

Most photorefractive (PR) materials require plasticizers in order to decrease the glass transition temperature, allowing for orientational enhancement by the chromophores. Introduction of the plasticizer, however, alters not only the viscosity but also the photoconductive properties of the material. This can be shown by comparing two different plasticizers which were introduced into a bifunctional low-molecular-weight PR glass and into a polyfluorene guest-host polymer. The latter reaches response times down to 600 microsecond(s) at a writing intensity of 1 W/cm2. We have recently improved the concept of low-molecular-weight PR glasses. A suitable, photoconducting unit allows the synthesis of a bifunctional system with a glass transition of 22.6 degree(s)C. Therefore, no plasticizer is needed. The material is based on a triphenyldiamine (TPD) moiety to which a nonlinear-optical chromophore is directly attached. The system is the first representative of a whole class of TPD molecules and polymers for photorefractive applications.


Archive | 1993

Copolymers with non-linear optical properties and the use thereof

Karl-Heinz Etzbach; Stefan Beckmann; Oskar Nuyken; Peter Dr. Strohriegl; Harry Mueller


Archive | 1986

Carbazole group-containing polysiloxane, photoconductive layers and electrophotographic material

Reinhold J. Leyrer; Reiner Dr. Hofmann; Dietrich Haarer; Peter Dr. Strohriegl; Peter Neumann; Rüdiger Dr. Iden; Karl-Heinz Etzbach


Archive | 1992

Organic photoconductors with liquid crystalline properties

Friedrich Closs; Thomas Frey; Dirk Funhoff; Karl Siemensmeyer; Helmut Prof Dr Ringsdorf; Dietrich Prof. Dr. Haarer; Peter Dr. Strohriegl


Archive | 1991

Methacrylate (co)polymers containing carbazolyl side groups and electropohotographic recording elements containing the said (co)polymers

Reinhold J. Leyrer; Harald Dr Lauke; Bernhard Nick; Peter Dr. Strohriegl; Dietrich Haarer


Archive | 1985

Carbazole-substituted polysiloxanes, and the use thereof

Peter Dr. Strohriegl; Dietrich Haarer; Reinhold J. Leyrer; Reiner Dr. Hofmann


Archive | 1992

Process for the preparation and use of polymers having NLO-active side-groups

Heike Dr Kilburg; Karl-Heinz Etzbach; Karin Heidrun Dr Beck; Peter Dr. Strohriegl; Harry Mueller; Oskar Nuyken


Archive | 1993

Copolymers with non-linear optical properties and their use

Karl-Heinz Etzbach; Stefan Beckmann; Oskar Dr. Prof. Nuyken; Peter Dr. Strohriegl; Harry Mueller


Archive | 1986

Solid, photoconductive layers, and electrophotographic recording materials containing them

Reinhold J. Leyrer; Peter Neumann; Ruediger Dr Iden; Karl-Heinz Etzbach; Peter Dr. Strohriegl; Dietrich Haarer


Archive | 1993

Increasing photoconductivity by adjusting the discotic phase

Friedrich Closs; Thomas Frey; Dirk Funhoff; Karl Siemensmeyer; Helmut Ringsdorf; Dietrich Haarer; Peter Dr. Strohriegl

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