Literature DB >> 23928555

Temperature dependent absorption cross-sections of O2-O2 collision pairs between 340 and 630 nm and at atmospherically relevant pressure.

Ryan Thalman1, Rainer Volkamer.   

Abstract

The collisions between two oxygen molecules give rise to O4 absorption in the Earth atmosphere. O4 absorption is relevant to atmospheric transmission and Earth's radiation budget. O4 is further used as a reference gas in Differential Optical Absorption Spectroscopy (DOAS) applications to infer properties of clouds and aerosols. The O4 absorption cross section spectrum of bands centered at 343, 360, 380, 446, 477, 532, 577 and 630 nm is investigated in dry air and oxygen as a function of temperature (203-295 K), and at 820 mbar pressure. We characterize the temperature dependent O4 line shape and provide high precision O4 absorption cross section reference spectra that are suitable for atmospheric O4 measurements. The peak absorption cross-section is found to increase at lower temperatures due to a corresponding narrowing of the spectral band width, while the integrated cross-section remains constant (within <3%, the uncertainty of our measurements). The enthalpy of formation is determined to be ΔH(250) = -0.12 ± 0.12 kJ mol(-1), which is essentially zero, and supports previous assignments of O4 as collision induced absorption (CIA). At 203 K, van der Waals complexes (O(2-dimer)) contribute less than 0.14% to the O4 absorption in air. We conclude that O(2-dimer) is not observable in the Earth atmosphere, and as a consequence the atmospheric O4 distribution is for all practical means and purposes independent of temperature, and can be predicted with an accuracy of better than 10(-3) from knowledge of the oxygen concentration profile.

Entities:  

Year:  2013        PMID: 23928555     DOI: 10.1039/c3cp50968k

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  12 in total

1.  Gas-phase broadband spectroscopy using active sources: progress, status, and applications.

Authors:  Kevin C Cossel; Eleanor M Waxman; Ian A Finneran; Geoffrey A Blake; Jun Ye; Nathan R Newbury
Journal:  J Opt Soc Am B       Date:  2016-12-14       Impact factor: 2.106

2.  Reflections on O2 as a Biosignature in Exoplanetary Atmospheres.

Authors:  Victoria S Meadows
Journal:  Astrobiology       Date:  2017-04-26       Impact factor: 4.335

3.  Evaluating the impact of spatial resolution on tropospheric NO2 column comparisons within urban areas using high-resolution airborne data.

Authors:  Laura M Judd; Jassim A Al-Saadi; Scott J Janz; Matthew G Kowalewski; R Bradley Pierce; James J Szykman; Lukas C Valin; Robert Swap; Alexander Cede; Moritz Mueller; Martin Tiefengraber; Nader Abuhassan; David Williams
Journal:  Atmos Meas Tech       Date:  2019-11-22       Impact factor: 4.176

4.  IDENTIFYING PLANETARY BIOSIGNATURE IMPOSTORS: SPECTRAL FEATURES OF CO AND O4 RESULTING FROM ABIOTIC O2/O3 PRODUCTION.

Authors:  Edward W Schwieterman; Victoria S Meadows; Shawn D Domagal-Goldman; Drake Deming; Giada N Arney; Rodrigo Luger; Chester E Harman; Amit Misra; Rory Barnes
Journal:  Astrophys J Lett       Date:  2016-02-25       Impact factor: 7.413

5.  Tropospheric Emissions: Monitoring of Pollution (TEMPO).

Authors:  P Zoogman; X Liu; R M Suleiman; W F Pennington; D E Flittner; J A Al-Saadi; B B Hilton; D K Nicks; M J Newchurch; J L Carr; S J Janz; M R Andraschko; A Arola; B D Baker; B P Canova; C Chan Miller; R C Cohen; J E Davis; M E Dussault; D P Edwards; J Fishman; A Ghulam; G González Abad; M Grutter; J R Herman; J Houck; D J Jacob; J Joiner; B J Kerridge; J Kim; N A Krotkov; L Lamsal; C Li; A Lindfors; R V Martin; C T McElroy; C McLinden; V Natraj; D O Neil; C R Nowlan; E J O'Sullivan; P I Palmer; R B Pierce; M R Pippin; A Saiz-Lopez; R J D Spurr; J J Szykman; O Torres; J P Veefkind; B Veihelmann; H Wang; J Wang; K Chance
Journal:  J Quant Spectrosc Radiat Transf       Date:  2016-06-06       Impact factor: 2.468

Review 6.  Exoplanet Biosignatures: Understanding Oxygen as a Biosignature in the Context of Its Environment.

Authors:  Victoria S Meadows; Christopher T Reinhard; Giada N Arney; Mary N Parenteau; Edward W Schwieterman; Shawn D Domagal-Goldman; Andrew P Lincowski; Karl R Stapelfeldt; Heike Rauer; Shiladitya DasSarma; Siddharth Hegde; Norio Narita; Russell Deitrick; Jacob Lustig-Yaeger; Timothy W Lyons; Nicholas Siegler; J Lee Grenfell
Journal:  Astrobiology       Date:  2018-05-10       Impact factor: 4.335

7.  Effect of Polyoxymethylene (POM-H Delrin) offgassing within Pandora head sensor on direct sun and multi-axis formaldehyde column measurements in 2016 - 2019.

Authors:  Elena Spinei; Martin Tiefengraber; Moritz Müller; Manuel Gebetsberger; Alexander Cede; Luke Valin; James Szykman; Andrew Whitehill; Alexander Kostakis; Fernando Santos; Nader Abbuhasan; Xiaoyi Zhao; Vitali Fioletov; Sum Chi Lee; Robert Swap
Journal:  Atmos Meas Tech       Date:  2021       Impact factor: 4.176

Review 8.  Direct 1O2 optical excitation: A tool for redox biology.

Authors:  Alfonso Blázquez-Castro
Journal:  Redox Biol       Date:  2017-05-25       Impact factor: 11.799

9.  Development of a 443 nm diode laser-based differential photoacoustic spectrometer for simultaneous measurements of aerosol absorption and NO2.

Authors:  Yuan Cao; Qiang Liu; Ruifeng Wang; Kun Liu; Weidong Chen; Guishi Wang; Xiaoming Gao
Journal:  Photoacoustics       Date:  2020-12-09

10.  Ozone depletion due to dust release of iodine in the free troposphere.

Authors:  Theodore K Koenig; Rainer Volkamer; Eric C Apel; James F Bresch; Carlos A Cuevas; Barbara Dix; Edwin W Eloranta; Rafael P Fernandez; Samuel R Hall; Rebecca S Hornbrook; R Bradley Pierce; J Michael Reeves; Alfonso Saiz-Lopez; Kirk Ullmann
Journal:  Sci Adv       Date:  2021-12-22       Impact factor: 14.136

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