Showing posts with label Eidgenössische Technische Hochschule Zürich (ETHZ). Show all posts
Showing posts with label Eidgenössische Technische Hochschule Zürich (ETHZ). Show all posts

Wednesday, October 23, 2013

Terahertz quantum-cascade laser emits 3 mW continuous-wave








http://www.laserfocusworld.com/articles/2013/10/terahertz-quantum-cascade-laser-emits-3-mw-continuous-wave.html
Lausanne and Zürich, Switzerland--Researchers from Ecole Polytechnique Fédérale de Lausanne (EPFL) and Eidgenössische Technische Hochschule Zürich (ETHZ) have created a continuous-wave (CW) terahertz-radiation-emitting quantum-cascade laser (QCL) that produces single-mode surface emission with a 3 mW output power at 3.12 THz in a collimated beam. A maximum operating temperature of 100 K was achieved.

To do this, the researchers replaced the conventional loss-type boundary conditions for such a laser with a second-order Bragg grating that can diffract TM-polarized in-plane radiation at the required frequency into vertical emission. More importantly, instead of absorbing the radiation at the boundary, to ensure the single-mode operation, the Bragg grating scatters the radiation into the desired vertical emission. A high pumping efficiency with better heat flow dissipation is achieved: The new design enables CW operation that is significantly improved in terms of maximum output power and operating temperature.

Background
Since the first QCL was demonstrated in 1994 and implemented in the terahertz regime in 2002, these lasers have become one of the most important solid-state light sources in this frequency range. The use of metal-metal (MM) waveguides was a key improvement in moving QCL wavelength from the mid-IR to the terahertz range, allowing forsubwavelength field confinement. Nevertheless, this type of confinement leads to a highly divergent beam from the facet.

Different strategies like photonic-crystal (PhC) or metallic-grating distributed-feedback (DFB) patterning for in-plane or vertical emission have been developed. However, most of these operate in a pulsed mode, with CW operation limited and far from being optimized.

While an absorbing boundary is commonly used to control the optical performance of a laser in MM confinement, this approach increases the total loss in the device and results in a large threshold current density, limiting the CW maximum output power and operating temperature.

The two-dimensional PhC structure created by the Swiss researchers with a second-order Bragg-grating extractor to simultaneously provide the boundary condition necessary for mode selection produces a highly collimated far-field pattern -- an important step towards real-world applications in astrophysics, biology, sensing, environmental and pollutant monitoring, and security screening. Another advantage; the laser’s maximum operating temperature of 100 K is above the boiling point of liquid ntrogen (N2), allowing relatively straightforward N2 cryogenic cooling.

Source: http://phys.org/news/2013-10-continuous-wave-terahertz-lasers.html

REFERENCE:

1. Zhaolu Diao et al., Laser & Photonics Reviews, Vol. 7, Issue 5, p. L45, September 2013; doi: 10.1002/lpor.201300035

Thursday, October 3, 2013

New level for continuous-wave terahertz lasers

 



http://phys.org/news/2013-10-continuous-wave-terahertz-lasers.html

Since the first quantum cascade (QC) laser was demonstrated in 1994 and implemented in THz regime in 2002, they have become one of the most important solid state light sources in this frequency range. The metal-metal (MM) waveguide was a key improvement in applying the quantum cascade concept from mid-infrared to THz range, allowing for a sub-wavelength field confinement. Nevertheless, this confinement leads to a highly divergent beam from the facet. Different strategies like photonic crystal (PhC) or metallic grating distributed feedback (DFB) patterning for in plane or vertical emission have been developed. However, most of these progresses were demonstrated in pulsed operation mode. Continuous-wave (CW) operation performance is still limited and far from being optimized, despite the fact that it is of a crucial demand in astrophysics, biology, sensing, environmental and pollutant monitoring, or security screening


Distributed feedback and PhC QC lasers are amongst the leading candidates in the field of semiconductor light sources with high performance CW and single mode operation in the THz . Absorbing boundary condition is a commonly used method to control the optical performance of a laser in double-metal confinement. However, this approach increases the total loss in the device and results in a large threshold current density, limiting the CW maximum output power and operating temperature.
Swiss researchers now present a new approach: they replaced the loss type boundary conditions by a second order Bragg grating which can diffract TM polarized in-plane radiation at the required frequency into vertical emission. More importantly, instead of absorbing the radiation at the boundary, to ensure the single mode operation this Bragg grating scatters them into desired vertical emission. A large pumping efficiency with better heat flow dissipation is achieved: The new design enables CW operation that is significantly improved in terms of maximum output power and Tmax.


The team from Ecole Polytechnique Fédérale de Lausanne (EPFL) and Eidgenössische Technische Hochschule Zürich (ETHZ) report single mode surface emission with several milliwatts at 3.12 THz. A maximum operation temperature (Tmax) of 100 K was achieved. The scientists were able to demonstrate a highly collimated far-field pattern, which is an important step towards real world applications.
Thanks to the scalability of PhCs, their new design can be applied throughout the entire THz wavelength range, especially for longer wavelengths. The researchers are convinced that a variety of real applications of the CW operation THz light sources can be achieved in the future with optimized slope efficiencies and remarkable output powers above the liquid nitrogen temperature.



 

Friday, September 20, 2013

A new level for continuous-wave terahertz lasers

http://www.materialsviews.com/a-new-level-for-continuous-wave-terahertz-lasers/

A robust surface emitting continuous-wave terahertz quantum cascade laser has been realized in a two-dimensional photonic crystal structure by a second order Bragg grating extractor that simultaneously provides the boundary condition necessary for mode selection.
Since the first quantum cascade (QC) laser was demonstrated in 1994 and implemented in the THz regime in 2002, they have become one of the most important solid state light sources in this frequency range. The metal-metal (MM) waveguide was a key improvement in applying the quantum cascade concept from mid-infrared to THz range, allowing for a sub-wavelength field confinement. Nevertheless, this confinement leads to a highly divergent beam from the facet. Different strategies like photonic crystal (PhC) or metallic grating distributed feedback (DFB) patterning for in plane or vertical emission have been developed. However, most of these progresses were demonstrated in pulsed operation mode. Continuous-wave (CW) operation performance is still limited and far from being optimized, despite the fact that it is of a crucial demand in astrophysics, biology, sensing, environmental and pollutant monitoring, or security screening.
Distributed feedback and PhC QC lasers are amongst the leading candidates in the field of semiconductor light sources with high performance CW and single mode operation in the THz frequency range. Absorbing boundary condition is a commonly used method to control the optical performance of a laser in double-metal confinement. However, this approach increases the total loss in the device and results in a large threshold current density, limiting the CW maximum output power and operating temperature.
LPR_5_2013Swiss researchers now present a new approach: they replaced the loss type boundary conditions by a second order Bragg gratingwhich can diffract TM polarized in-plane radiation at the required frequency into vertical emission. More importantly, instead of absorbing the radiation at the boundary, to ensure the single mode operation this Bragg grating scatters them into desired vertical emission. A large pumping efficiency with better heat flow dissipation is achieved: The new design enables CW operation that is significantly improved in terms of maximum output power and Tmax.
The team from Ecole Polytechnique Fédérale de Lausanne (EPFL) and Eidgenössische Technische Hochschule Zürich (ETHZ) report single mode surface emission with several milliwatts output power at 3.12 THz. A maximum operation temperature (Tmax) of 100 K was achieved. The scientists were able to demonstrate a highly collimated far-field pattern, which is an important step towards real world applications.
Thanks to the scalability of PhCs, their new design can be applied throughout the entire THz wavelength range, especially for longer wavelengths. The researchers are convinced that a variety of real applications of the CW operation THz light sources can be achieved in the future with optimized slope efficiencies and remarkable output powers above the liquid nitrogen temperature.