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Laser spectroscopy for breath analysis: towards clinical implementation.
Henderson, Ben; Khodabakhsh, Amir; Metsälä, Markus; Ventrillard, Irène; Schmidt, Florian M; Romanini, Daniele; Ritchie, Grant A D; Te Lintel Hekkert, Sacco; Briot, Raphaël; Risby, Terence; Marczin, Nandor; Harren, Frans J M; Cristescu, Simona M.
Affiliation
  • Henderson B; 1Trace Gas Research Group, Molecular and Laser Physics, IMM, Radboud University, 6525 AJ Nijmegen, The Netherlands.
  • Khodabakhsh A; 1Trace Gas Research Group, Molecular and Laser Physics, IMM, Radboud University, 6525 AJ Nijmegen, The Netherlands.
  • Metsälä M; 2Department of Chemistry, University of Helsinki, PO Box 55, 00014 Helsinki, Finland.
  • Ventrillard I; 3University of Grenoble Alpes, CNRS, LIPhy, 38000 Grenoble, France.
  • Schmidt FM; 4Department of Applied Physics and Electronics, Umeå University, 90187 Umeå, Sweden.
  • Romanini D; 3University of Grenoble Alpes, CNRS, LIPhy, 38000 Grenoble, France.
  • Ritchie GAD; 6Department of Chemistry, Physical and Theoretical Chemistry Laboratory, University of Oxford, South Parks Road, Oxford, OX1 3QZ UK.
  • Te Lintel Hekkert S; Sensor Sense B.V, St. Agnetenweg 103, 6545 AV Nijmegen, The Netherlands.
  • Briot R; 5University of Grenoble Alpes, CNRS, TIMC-IMAG, 38000 Grenoble, France.
  • Risby T; 8Emergency Department and Mobile Intensive Care Unit, Grenoble University Hospital, Grenoble, France.
  • Marczin N; 9Department of Environmental Health and Engineering, Bloomberg School of Public Health, The Johns Hopkins University, Baltimore, USA.
  • Harren FJM; 10Section of Anaesthetics, Pain Medicine and Intensive Care, Department of Surgery and Cancer, Faculty of Medicine, Imperial College London, London, UK.
  • Cristescu SM; 11Centre of Anaesthesia and Intensive Care, Semmelweis University, Budapest, Hungary.
Appl Phys B ; 124(8): 161, 2018.
Article in En | MEDLINE | ID: mdl-30956412
ABSTRACT
Detection and analysis of volatile compounds in exhaled breath represents an attractive tool for monitoring the metabolic status of a patient and disease diagnosis, since it is non-invasive and fast. Numerous studies have already demonstrated the benefit of breath analysis in clinical settings/applications and encouraged multidisciplinary research to reveal new insights regarding the origins, pathways, and pathophysiological roles of breath components. Many breath analysis methods are currently available to help explore these directions, ranging from mass spectrometry to laser-based spectroscopy and sensor arrays. This review presents an update of the current status of optical methods, using near and mid-infrared sources, for clinical breath gas analysis over the last decade and describes recent technological developments and their applications. The review includes tunable diode laser absorption spectroscopy, cavity ring-down spectroscopy, integrated cavity output spectroscopy, cavity-enhanced absorption spectroscopy, photoacoustic spectroscopy, quartz-enhanced photoacoustic spectroscopy, and optical frequency comb spectroscopy. A SWOT analysis (strengths, weaknesses, opportunities, and threats) is presented that describes the laser-based techniques within the clinical framework of breath research and their appealing features for clinical use.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Appl Phys B Year: 2018 Document type: Article Affiliation country: Países Bajos

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Appl Phys B Year: 2018 Document type: Article Affiliation country: Países Bajos