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Topological insulator laser: Theory
by
Christodoulides, Demetrios N.
, Lumer, Yaakov
, Rechtsman, Mikael C.
, Chong, Y. D.
, Bandres, Miguel A.
, Segev, Mordechai
, Harari, Gal
, Khajavikhan, Mercedeh
in
Cavities
/ Cavity resonators
/ Cold atoms
/ Condensed matter physics
/ Conductance
/ Coupled modes
/ Defects
/ Deformation
/ Elastic systems
/ Exhibits
/ Fabrication
/ High gain
/ Laser applications
/ Laser arrays
/ Laser cavities
/ Lasers
/ Lasing
/ Magnetic fields
/ Magnetic properties
/ Mathematics
/ Open systems
/ Optics
/ Photonics
/ Physics
/ Resistance
/ Resonators
/ Robustness (mathematics)
/ Semiconductor lasers
/ Spintronics
/ Topological insulators
/ Topology
2018
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Topological insulator laser: Theory
by
Christodoulides, Demetrios N.
, Lumer, Yaakov
, Rechtsman, Mikael C.
, Chong, Y. D.
, Bandres, Miguel A.
, Segev, Mordechai
, Harari, Gal
, Khajavikhan, Mercedeh
in
Cavities
/ Cavity resonators
/ Cold atoms
/ Condensed matter physics
/ Conductance
/ Coupled modes
/ Defects
/ Deformation
/ Elastic systems
/ Exhibits
/ Fabrication
/ High gain
/ Laser applications
/ Laser arrays
/ Laser cavities
/ Lasers
/ Lasing
/ Magnetic fields
/ Magnetic properties
/ Mathematics
/ Open systems
/ Optics
/ Photonics
/ Physics
/ Resistance
/ Resonators
/ Robustness (mathematics)
/ Semiconductor lasers
/ Spintronics
/ Topological insulators
/ Topology
2018
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Topological insulator laser: Theory
by
Christodoulides, Demetrios N.
, Lumer, Yaakov
, Rechtsman, Mikael C.
, Chong, Y. D.
, Bandres, Miguel A.
, Segev, Mordechai
, Harari, Gal
, Khajavikhan, Mercedeh
in
Cavities
/ Cavity resonators
/ Cold atoms
/ Condensed matter physics
/ Conductance
/ Coupled modes
/ Defects
/ Deformation
/ Elastic systems
/ Exhibits
/ Fabrication
/ High gain
/ Laser applications
/ Laser arrays
/ Laser cavities
/ Lasers
/ Lasing
/ Magnetic fields
/ Magnetic properties
/ Mathematics
/ Open systems
/ Optics
/ Photonics
/ Physics
/ Resistance
/ Resonators
/ Robustness (mathematics)
/ Semiconductor lasers
/ Spintronics
/ Topological insulators
/ Topology
2018
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Journal Article
Topological insulator laser: Theory
2018
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Overview
Ideas based on topology, initially developed in mathematics to describe the properties of geometric space under deformations, are now finding application in materials, electronics, and optics. The main driver is topological protection, a property that provides stability to a system even in the presence of defects. Harari et al. outline a theoretical proposal that carries such ideas over to geometrically designed laser cavities. The lasing mode is confined to the topological edge state of the cavity structure. Bandres et al. implemented those ideas to fabricate a topological insulator laser with an array of ring resonators. The results demonstrate a powerful platform for developing new laser systems.
Science , this issue p. eaar4003 , p. eaar4005
Lasing is observed in an edge mode of a designed optical topological insulator.
Topological insulators are phases of matter characterized by topological edge states that propagate in a unidirectional manner that is robust to imperfections and disorder. These attributes make topological insulator systems ideal candidates for enabling applications in quantum computation and spintronics. We propose a concept that exploits topological effects in a unique way: the topological insulator laser. These are lasers whose lasing mode exhibits topologically protected transport without magnetic fields. The underlying topological properties lead to a highly efficient laser, robust to defects and disorder, with single-mode lasing even at very high gain values. The topological insulator laser alters current understanding of the interplay between disorder and lasing, and at the same time opens exciting possibilities in topological physics, such as topologically protected transport in systems with gain. On the technological side, the topological insulator laser provides a route to arrays of semiconductor lasers that operate as one single-mode high-power laser coupled efficiently into an output port.
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