Showing posts with label S. Chakraborty. Show all posts
Showing posts with label S. Chakraborty. Show all posts

Saturday, January 16, 2016

Abstract-Gain modulation by graphene plasmons in aperiodic lattice lasers





Science  15 Jan 2016:
Vol. 351, Issue 6270, pp. 246-248
DOI: 10.1126/science.aad2930

Two-dimensional graphene plasmon-based technologies will enable the development of fast, compact, and inexpensive active photonic elements because, unlike plasmons in other materials, graphene plasmons can be tuned via the doping level. Such tuning is harnessed within terahertz quantum cascade lasers to reversibly alter their emission. This is achieved in two key steps: first, by exciting graphene plasmons within an aperiodic lattice laser and, second, by engineering photon lifetimes, linking graphene’s Fermi energy with the round-trip gain. Modal gain and hence laser spectra are highly sensitive to the doping of an integrated, electrically controllable, graphene layer. Demonstration of the integrated graphene plasmon laser principle lays the foundation for a new generation of active, programmable plasmonic metamaterials with major implications across photonics, material sciences, and nanotechnology.

Monday, May 27, 2013

Abstract-Electronically tunable aperiodic distributed feedback terahertz lasers



O. P. Marshall1S. Chakraborty1Md. Khairuzzaman1T. Folland1A. Gholinia2H. E. Beere3, and D. A. Ritchie3
1School of Electrical and Electronic Engineering, University of Manchester, Manchester M13 9PL, United Kingdom
2School of Materials, University of Manchester, Manchester M1 7HS, United Kingdom
3Cavendish Laboratory, Department of Physics, University of Cambridge, Cambridge CB3 0HE, United Kingdom 


Focussed ion beam milling can be used to introduce aperiodic distributed feedback (ADFB) gratings into fully packaged, operational terahertz (THZ) quantum cascade lasers to achieve electronically controlled, discretely tunable laser emission. These aperiodic gratings—designed using computer-generated hologram techniques—consist of multiple slits in the surface plasmon waveguide, distributed along the length of the laser cavity. Tuning behaviour and output power in ADFB lasers operating around 2.9 THz are investigated with a variety of slit dimensions and grating scales. Mode selectivity and grating losses are found to be strongly dependent on milling depth into the upper waveguide layers, dramatically increasing as the metallic layers are penetrated, then rising more slowly with deeper milling into the laser active region. Grating scale and placement along the laser cavity length are also shown to influence mode selection.http://jap.aip.org/resource/1/japiau/v113/i20/p203103_s1?isAuthorized=no