Showing posts with label TERACOMB. Show all posts
Showing posts with label TERACOMB. Show all posts

Wednesday, February 15, 2017

QCL-based THz sources generate 'record' ultrashort pulses



TUW and ETHZ researchers add lateral absorber to laser resonator, creating emission bandwidth across a full octave.

http://optics.org/news/8/2/16



Broadband terahertz amplifier based on a quantum cascade laser.
Researchers at TU Wien (Vienna, Austria) and ETH Zurich (Switzerland) have succeeded in generating ultrashort terahertz waves. With lengths of just a few picoseconds, these pulses are suited to spectroscopic applications and can enable extremely precise frequency measurements to be taken, says the team.

A working group led by Prof. Karl Unterrainer at the Photonics Institute at TUW has been developing quantum cascade lasers (QCLs) as an efficient means of generating terahertz waves. QCLs consist of a precisely defined sequence of several hundred semiconductor layers a few nanometers thick.

This construction means there is the possibility for the operator to select the exact energy state at which the electrons remain within the semiconductor structure. This in turn allows the frequency of the laser light emitted to be tuned to suit various inspection and spectroscopic applications.
‘Laser sandwich’
With the capability of being able to determine the laser wavelengths themselves, several quantum cascade structures with different output frequencies can be stacked on top of one another, with the aim of generating broadband terahertz radiation.
“Heterogeneous active zones of this kind are ideally suited for implementing broadband terahertz amplifiers and generating ultrashort terahertz pulses,” said Dominic Bachmann from the Photonics Institute.
Furthermore, if the discrete laser lines are linked together to establish a fixed phase relationship between the laser modes, a “frequency comb” is formed. Frequency combs make it possible to take extremely precise measurements of the absolute frequency of the light being used, which is essential for a huge number of applications.
The discovery of the frequency comb more or less revolutionized optical metrology and was honoured with the Nobel Prize for Physics in 2005. Over the past four years, researchers worldwide have been working to generate a terahertz frequency comb using a quantum cascade laser as part of the EU project TERACOMB, completed in 2015. Led by Dr Juraj Darmo from the Vienna Photonics Institute, the team of international research groups has succeeded in generating the first broadband terahertz frequency comb based on semiconductor technology.
Vienna breakthough
A method developed by the group led by Prof. Unterrainer makes it possible to analyze internal quantum cascade laser parameters during laser operation. This technique is based on time-resolved spectroscopy, with broadband terahertz pulses penetrating the sample to be measured.

Based on femtosecond lasers, this technology can be used to collect the full information content relating to the time and frequency range with just one single measurement. As a result, the scientists at the Photonics Institute have managed to quantify the optical gain coefficients as well as the optical dispersion in broadband terahertz quantum cascade lasers, improving their understanding of the complex dynamics at play. “These findings allow us to increase the laser bandwidth even further and to improve the efficiency of frequency combs,” explains Juraj Darmo.

One unresolved issue with terahertz quantum cascade lasers had been the existence of laser lines with different propagation speeds. If there are laser modes with a higher lateral order, the intensity is distributed very unevenly between the laser lines, thereby reducing the usable bandwidth and preventing the generation of a frequency comb.
To prevent these modes from oscillating, the losses must be increased to such an extent that they do not reach the laser threshold. By adding a tailored lateral absorber to the edges of the laser resonator, the TUW/ETHZ researchers suppressed the higher lateral modes entirely, without having any relevant impact on the fundamental modes. The result was an emission bandwidth covering a full octave, even mode distribution in the middle at 700 GHz, and a frequency comb with a bandwidth of 440 GHz.

Furthermore, the lateral absorbers enable the generation of ultrashort terahertz pulses with pulse widths of less than 3 ps, which represents what they say is a new world record for terahertz pulses generated using a quantum cascade laser. “It was truly amazing to see how a relatively minor adjustment to the waveguide could bring about such a dramatic improvement,” said Dominic Bachmann, who has just finished writing his dissertation on broadband quantum cascade lasers.

Monday, February 13, 2017

New record achieved in terahertz pulse generation



http://www.alphagalileo.org/ViewItem.aspx?ItemId=172465&CultureCode=en

A group of scientists from TU Wien and ETH Zurich have succeeded in their attempts to generate ultrashort terahertz light pulses. With lengths of just a few picoseconds, these pulses are ideally suited to spectroscopic applications and enable extremely precise frequency measurements to be taken.
The unique properties of terahertz radiation mean it is of interest for a wide range of potential applications, including non-invasive medical imaging and the detection of hazardous substances. Terahertz waves can penetrate many materials that are opaque to visible light and, unlike X-radiation, do not pose a risk of damage to biological tissue. In addition to this, many substances have a molecular fingerprint in the terahertz range, allowing them to be detected using spectroscopic methods. One efficient way of generating these terahertz waves is using quantum cascade lasers, which a working group led by Prof. Karl Unterrainer at the Photonics Institute at TU Wien has been researching and developing. Quantum cascade lasers consist of a precisely defined sequence of several hundred semiconductor layers that measure just a few nanometres in thickness. This special construction means there is the freedom to select the exact energy state at which the electrons stay within the semiconductor structure. This allows the frequency of the laser light emitted to be adjusted to suit the application in question.
Creating a frequency comb with a broadband ‘laser sandwich’
With this special feature of being able to determine the laser wavelengths themselves, several quantum cascade structures with different emission frequencies can be stacked on top of one another, with the aim of generating broadband terahertz radiation.  “Heterogeneous active zones of this kind are ideally suited for implementing broadband terahertz amplifiers and generating ultrashort terahertz pulses,” explains Dominic Bachmann from the Photonics Institute. Plus, if the discrete laser lines are linked together to establish a fixed phase relationship between the laser modes, something known as a ‘frequency comb’ will be created. Frequency combs make it possible to take extremely precise measurements of the absolute frequency of the light being used, which is essential for a huge number of applications. The discovery of the frequency comb more or less revolutionised optical metrology and was honoured with the Nobel Prize for Physics in 2005. Over the past four years, researchers have been working hard to generate a terahertz frequency comb using a quantum cascade laser as part of the EU project TERACOMB. Headed up by Dr Juraj Darmo from the Photonics Institute, the team of international research groups has succeeded in generating the first broadband terahertz frequency comb based on semiconductor technology.
Watching lasers at work
One method developed by the group led by Prof. Unterrainer makes it possible to analyse internal quantum cascade laser parameters during laser operation. This technique is based on time-resolved spectroscopy, with broadband terahertz pulses penetrating the sample to be measured. Based on femtosecond lasers, this technology can be used to collect the full information content relating to the time and frequency range with just one single measurement. As a result, the scientists at the Photonics Institute have managed to quantify the optical gain coefficients as well as the optical dispersion in broadband terahertz quantum cascade lasers, improving their understanding of the complex dynamics at play. “These findings allow us to increase the laser bandwidth even further and to improve the efficiency of frequency combs,” explains Juraj Darmo.
Targeting losses
One unresolved issue with terahertz quantum cascade lasers had been the existence of laser lines with different propagation speeds. If there are laser modes with a higher lateral order, the intensity is distributed very unevenly between the laser lines, thereby reducing the usable bandwidth and preventing the generation of a frequency comb. In order to stop these modes from oscillating, the losses have to be increased to such an extent that they do not reach the laser threshold. By adding a tailored lateral absorber to the edges of the laser resonator, the researchers managed to suppress the higher lateral modes entirely, without having any relevant impact on the fundamental modes. The result was an emission bandwidth covering a full octave, very even mode distribution in the middle at 700 GHz, and a frequency comb with a bandwidth of 440 GHz. What's more, the lateral absorbers enable the generation of ultrashort terahertz pulses with pulse widths of less than 3 ps, which represents a new world record for terahertz pulses generated using a quantum cascade laser. “It was truly amazing to see how a relatively minor adjustment to the waveguide could bring about such a dramatic improvement,” explains Dominic Bachmann, who has just finished writing his dissertation on broadband quantum cascade lasers.

Tuesday, January 20, 2015

TERACOMB FET Open project: tuning quantum cascade lasers to the terahertz

http://ec.europa.eu/digital-agenda/en/news/teracomb-fet-open-project-tuning-quantum-cascade-lasers-terahertz

The TERACOMB FET Open project successfully developed quantum cascade lasers emitting stably in the terahertz region of the electromagnetic spectrum. This technology would allow for the creation of compact high resolution spectroscopy devices.

A new paper in Nature Photonics from ETH Zürich partner at the TERACOMB project reports about the first experimental realization of an octave-spanning semiconductor injection laser. This ambitious project is focused on pursuing the technology of quantum cascade lasers (QCL) to generate a frequency comb (FC) in the terahertz frequency region. QCLs are currently useful for spectroscopic applications such as remote sensing of environmental gases and pollutants in the atmosphere.
The devices developed by TERACOMB emit in the THz region of the electromagnetic spectrum. Octave spanning lasers are the building block of frequency combs, which constitute nowadays a powerful platform for high resolution spectroscopy in the visible and Mid-IR as well as in metrology. TERACOMB devices not only show octave spanning output but, thanks to careful bandstructure engineering, also display a remarkably stable output with sub-KHz RF beatnotes indicating comb operation on more than 600 GHz spectral bandwidth.
The team at TERACOMB points that such devices pave the way towards compact, comb-based THz spectrometers, overcoming many of the current technological limits on in identification and quantification of complex heavy molecules such as those in toxic chemicals, explosives, and drugs.
The TERACOMB project consortium brings together partners from Austria, France, Switzerland, Germany and the United Kingdom.