Photonic mode dispersion of a two-dimensional distributed feedback polymer laser
- 24 April 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 67 (16) , 165107
- https://doi.org/10.1103/physrevb.67.165107
Abstract
We present an analysis of the photonic mode dispersion of a two-dimensional (2D) distributed feedback polymer laser based on the conjugated polymer poly[2-methoxy-5--ethylhexyloxy)-1,4-phenylene vinylene]. We use a combination of a simple model, together with experimental measurements of the photonic mode dispersion in transmission and emission, to explain the operating characteristics of the laser. The laser was found to oscillate at 636 nm on one edge of a photonic stop band in the photonic dispersion. A 2D coupling of modes traveling perpendicular to the orthogonal gratings was found to lead to a low divergence laser emission normal to the waveguide. At pump energies well above the oscillation threshold for this mode, a divergent, cross-shaped far-field emission was observed, resulting from a distributed feedback occurring over a wide range of wave vectors in one band of the photonic dispersion.
Keywords
This publication has 29 references indexed in Scilit:
- Relationship between photonic band structure and emission characteristics of a polymer distributed feedback laserPhysical Review B, 2001
- Tuneable distributed feedback lasing in MEH-PPV filmsSynthetic Metals, 2001
- Laser modes in organic solid-state distributed feedback lasersApplied Physics B Laser and Optics, 2000
- Semiconducting (Conjugated) Polymers as Materials for Solid-State LasersAdvanced Materials, 2000
- Lasers Based on Semiconducting Organic MaterialsAdvanced Materials, 1999
- A Flexible Conjugated Polymer LaserAdvanced Materials, 1998
- Semiconducting polymer distributed feedback lasersApplied Physics Letters, 1998
- Semiconducting Polymers: A New Class of Solid-State Laser MaterialsScience, 1996
- Lasing from conjugated-polymer microcavitiesNature, 1996
- High quantum efficiency luminescence from a conducting polymer in solution: A novel polymer laser dyeApplied Physics Letters, 1992