A time domain optical coherence tomography (OCT) system is described that uses mid-infrared light . To the best of our knowledge, this is the first OCT system that operates in the mid-infrared spectral region. It has been designed to characterize bioengineered tissues in terms of their structure and biochemical composition. The system is based upon a free-space Michelson interferometer with a germanium beam splitter and a liquid nitrogen cooled HgCdTe detector. A key component of this work has been the development of a broadband quantum cascade laser source ( containing 11 different active regions of the three well vertical transition type) that emits continuously over the wavelength range. This wavelength range corresponds to the so called “mid-infrared fingerprint region” which exhibits well-defined absorption bands that are specifically attributable to the absorbing molecules. Therefore, this technology provides an opportunity for optical coherence molecular imaging without the need for molecular contrast agents. Preliminary measurements are presented.
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December 2007
Research Article|
December 18 2007
Mid-infrared optical coherence tomography
Christopher S. Colley;
Christopher S. Colley
Department of Medical Physics and Bioengineering,
University College London
, Malet Place Engineering Building, Gower Street, London WC1E 6BT, United Kingdom
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Jeremy C. Hebden;
Jeremy C. Hebden
Department of Medical Physics and Bioengineering,
University College London
, Malet Place Engineering Building, Gower Street, London WC1E 6BT, United Kingdom
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David T. Delpy;
David T. Delpy
Department of Medical Physics and Bioengineering,
University College London
, Malet Place Engineering Building, Gower Street, London WC1E 6BT, United Kingdom
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Alison D. Cambrey;
Alison D. Cambrey
Institute of Orthopaedics & Musculoskeletal Science,
University College London
, Brockley Hill, Stanmore, Middlesex HA7 4LP, United Kingdom
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Robert A. Brown;
Robert A. Brown
Institute of Orthopaedics & Musculoskeletal Science,
University College London
, Brockley Hill, Stanmore, Middlesex HA7 4LP, United Kingdom
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Evgeny A. Zibik;
Evgeny A. Zibik
Department of Physics and Astronomy,
University of Sheffield
, Sheffield S3 7RH, United Kingdom
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Wing H. Ng;
Wing H. Ng
Department of Physics and Astronomy,
University of Sheffield
, Sheffield S3 7RH, United Kingdom
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Luke R. Wilson;
Luke R. Wilson
Department of Physics and Astronomy,
University of Sheffield
, Sheffield S3 7RH, United Kingdom
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John W. Cockburn
John W. Cockburn
Department of Physics and Astronomy,
University of Sheffield
, Sheffield S3 7RH, United Kingdom
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Christopher S. Colley
Jeremy C. Hebden
David T. Delpy
Alison D. Cambrey
Robert A. Brown
Evgeny A. Zibik
Wing H. Ng
Luke R. Wilson
John W. Cockburn
Department of Medical Physics and Bioengineering,
University College London
, Malet Place Engineering Building, Gower Street, London WC1E 6BT, United KingdomRev. Sci. Instrum. 78, 123108 (2007)
Article history
Received:
October 22 2007
Accepted:
November 15 2007
Citation
Christopher S. Colley, Jeremy C. Hebden, David T. Delpy, Alison D. Cambrey, Robert A. Brown, Evgeny A. Zibik, Wing H. Ng, Luke R. Wilson, John W. Cockburn; Mid-infrared optical coherence tomography. Rev. Sci. Instrum. 1 December 2007; 78 (12): 123108. https://doi.org/10.1063/1.2821609
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