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A novel approach to achieve highly efficient nonlinear optical polymers from guest-host systems

  • Tae Dong Kim
  • , Jae Wook Kang
  • , Jingdong Luo
  • , Baoquan Chen
  • , Jae Won Ka
  • , Sei Hum Jang
  • , Neil Tucker
  • , Zhengwei Shi
  • , Marnie Haller
  • , Steven Hau
  • , Alex K.Y. Jen*
  • *Corresponding author for this work
  • University of Washington

Research output: Contribution to journalConference articlepeer-review

Abstract

A series of side-chain electrooptic (E-O) polymers have been prepared by Diels-Alder reaction in a solid state and characterized for their nonlinear optical properties. A synthesized chromophore were easily attached to a pendent anthracenyl moiety functionalized on the poly(methylmethacrylate-co- anthrylmethylmethacrylate) thermally in the bulk films during the poling process without compromising E-O performances. We have also controlled a chromophore concentration to determine its critical loading density at which chromophore-chromophore electrostatic interaction occurs in the polymer matrix. The highest E-O coefficient was 110 pm/V for the 34 wt% of the doped chromophore in the polymer at the wavelength of 1.3 (μm. A high loading density of chromophore was obtained without observing a severe phase separation in the polymer matrix by an AFM morphology study. This novel approach provides to demonstrate a strategy for developing highly efficient E-O materials with the full potential of a chromophore.

Original languageEnglish
Article number593505
Pages (from-to)1-11
Number of pages11
JournalProceedings of SPIE - The International Society for Optical Engineering
Volume5935
DOIs
StatePublished - 2005
EventLinear and Nonlinear Optics of Organic Materials V - San Diego, CA, United States
Duration: 2005.08.22005.08.4

Keywords

  • Chromophore loading density
  • Diels-Alder reaction
  • Electrooptic activity
  • Nonlinear optical polymer

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