Liquid crystal lasers promise cheaper, high colour resolution laser television

April 20, 2009 Liquid crystal lasers promise cheaper, high colour resolution laser television

Enlarge

Polychromatic laser emission from a gradient pitch liquid crystal cell, pumped from a single optical source.

(PhysOrg.com) -- Researchers at the Centre of Molecular Materials for Photonics and Electronics (CMMPE) (part of the Department's Photonics Research Group at the University of Cambridge) are leading the way towards the development of extremely high colour resolution laser displays using liquid crystal laser technology.

Laser displays are new to the market, and are currently being developed by a number of electronics manufacturers. In a laser display, pixels of light emission are generated from three separate red, green and blue (RGB) laser sources. They therefore have a much narrower spectral linewidth compared to the relatively broadband RGB sources from other display technologies, including CRT, plasma, LCD and even the latest organic light-emitting diode (OLED) displays. When these three narrow linewidth red, green and blue sources are combined in a laser display, they offer unprecedented depths of colour resolution over competing display technologies.

Liquid crystal lasers promise cheaper, high colour resolution laser television
Enlarge

Independent red, green and blue liquid crystal laser arrays.

CMMPE has been performing extensive research into a new form of laser technology based on liquid crystals. In a recent article in , they demonstrated a two-dimensional liquid crystal laser array, consisting of red, green and blue colours simultaneously being emitted from a single liquid crystal laser device, whilst being optically pumped with a single 430nm source. The article suggested that liquid crystal lasers could be used to replace the individual RGB lasers that are currently required in emerging laser displays. This would facilitate a reduction in the fabrication and materials cost of this currently fabrication-expensive technology. Furthermore, liquid crystal lasers are less likely to suffer from problems such as speckle, which are commonly associated with conventional laser display systems.

The liquid crystal laser itself is based on a similar device architecture as a conventional liquid crystal display. Liquid crystals are fast becoming an alternative medium for use as the feedback structure for a wide variety of miniature laser devices. Certain liquid crystal phases, in particular the chiral nematic phase, spontaneously self-organize to form a helical structure with a periodic refractive index. When combined with a gain medium, such as a fluorescent dye, the chiral liquid crystal provides sufficient feedback to generate lasing within a device of thicknesses less than a human hair.

Liquid crystal lasers promise cheaper, high colour resolution laser television
Enlarge

Simultaneous red, green and blue emitting liquid crystal laser array.

Unlike most conventional semiconductor lasers, the emission wavelength of a liquid crystal laser can be dynamically tuned using an applied voltage to alter the degree of periodicity of the macroscopic molecular structure. A further merit of this technology is that the emission can be chosen to be at any desired wavelength across the visible range through careful control, chemically, of the macroscopic material properties. A gradient in the periodicity of the liquid crystal structure can therefore be formed, which gives rise to simultaneous different emission wavelengths across the device. Such a feature is not readily achievable with existing laser technologies.

lasers, however, are not merely restricted in their use to displays. Researchers at CMMPE are also developing applications for their use in infra-red medical diagnostic tools, telecommunication devices and holographic projection.

This research is on-going and is part of the four-year Basic Technology Research Grant 'COSMOS' funded by the EPSRC (Engineering and Physical Sciences Research Council) to develop a new generation of micron sized tunable coherent light sources based on ordered organic periodic structures.

More information:

Articles on this research appeared in:
Optics Express (November, 2008)
Laser Focus World (January 2009)
Nature Photonics April 2009, Volume 3 No 4 pp177-236
Nature Photonics October 2008, Volume 2 No 10 pp581-638

Provided by University of Cambridge (news : web)


   
Rate this story - 4.6 /5 (21 votes)

Rank Filter

Move the slider to adjust rank threshold, so that you can hide some of the comments.


Display comments: newest first

  • Bob_Kob - Apr 21, 2009
    • Rank: not rated yet
    Yeah and then we all go blind from lasers shining in our eyes. "Oh its only 97% of the frequency that can blind" says the manufacturers.
  • laserdaveb - Apr 21, 2009
    • Rank: not rated yet
    what is the bandwidth relative to a particular chemical structure?
  • mados123 - Apr 21, 2009
    • Rank: not rated yet
    "Yeah and then we all go blind from lasers shining in our eyes."

    Not the case because by the time it reaches your eye, it will be diverged. Unless, of course, you open the projector/TV while its on and place your eyes in the light path. I wouldn't recommend doing that for other light sources as well.
  • RayCherry - Jul 29, 2009
    • Rank: not rated yet
    Also more energy efficient than OLEDs?

April 20, 2009 all stories

Comments: 4

4.6 /5 (21 votes)

  • hide
  • Related Stories




  • hide
  • Relevant PhysicsForums posts

  • How to find static friction
    created 4 hours ago
  • Calculating decible increases
    created 11 hours ago
  • Coefficients of friction
    created 11 hours ago
  • Deduction of centripetal force
    created 12 hours ago
  • Touching both terminals of a battery
    created 12 hours ago
  • Deduction of thrust force
    created 12 hours ago
  • More from Physics Forums - General Physics

Other News

Extra large carbon

Extra large carbon

Physics / General Physics

created 11 hours ago | popularity 4.7 / 5 (12) | comments 5 | with audio podcast

An exotic form of carbon has been found to have an extra large nucleus, dwarfing even the nuclei of much heavier elements like copper and zinc, in experiments performed in a particle accelerator in Japan. ...


Scientist explore future of high-energy physics

Scientist explore future of high-energy physics

Physics / General Physics

created 17 hours ago | popularity 4.9 / 5 (11) | comments 7 | with audio podcast

In a 1954 speech to the American Physical Society, the University of Chicago's Enrico Fermi fancifully envisioned a particle accelerator that encircled the globe. Such would be the ultimate theoretical outcome, ...


Leaf veins inspire a new model for distribution networks (w/ Video)

Physics / General Physics

created 14 hours ago | popularity 5 / 5 (3) | comments 0 | with audio podcast

(PhysOrg.com) -- Following the straight and narrow may be good moral advice, but it’s not a great design principle for a distribution network. In new research, a team of biophysicists describe a complex netting of interconnected ...


New magnetic tuning method enhances data storage

New magnetic tuning method enhances data storage

Physics / General Physics

created 18 hours ago | popularity 4.5 / 5 (4) | comments 0 | with audio podcast

Researchers in Chicago and London have developed a method for controlling the properties of magnets that could be used to improve the storage capacity of next-generation computer hard drives.


High-performance microring resonator developed by INRS researchers

Physics / Optics & Photonics

created 9 hours ago | popularity 1 / 5 (1) | comments 0

A new, more efficient low-cost microring resonator for high speed telecommunications systems has been developed and tested by Professor Roberto Morandotti's INRS team in collaboration with Canadian, American, and Australian ...