Academic literature on the topic 'Atmospheric spectroscopy'

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Journal articles on the topic "Atmospheric spectroscopy"

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Moorchilot, Vishnu S., Usha K. Aravind, Sunil Paul M. Menacherry, and Charuvila T. Aravindakumar. "Single-Particle Analysis of Atmospheric Aerosols: Applications of Raman Spectroscopy." Atmosphere 13, no. 11 (2022): 1779. http://dx.doi.org/10.3390/atmos13111779.

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Atmospheric aerosols, produced as a consequence of different anthropogenic and natural processes, impart significant control over the global energy budget, climate, and human–environmental health. Their size varies across the nano–micrometer scale. Based on their origin, they may be classified into primary or secondary aerosols. Biomass burning, incomplete combustion of fossil fuels, volcanic eruptions, and traffic-related and wind-driven suspensions contribute to primary aerosol emissions. In contrast, gas-to-particle conversion within the atmosphere leads to secondary particle production. Th
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Falco, Aurélien, Tiziano Zingales, William Pluriel, and Jérémy Leconte. "Toward a multidimensional analysis of transmission spectroscopy." Astronomy & Astrophysics 658 (January 28, 2022): A41. http://dx.doi.org/10.1051/0004-6361/202141940.

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Considering the relatively high precision that will be reached by future observatories, it has recently become clear that one dimensional (1D) atmospheric models, in which the atmospheric temperature and composition of a planet are considered to vary only in the vertical, will be unable to represent exoplanetary transmission spectra with a sufficient accuracy. This is particularly true for warm to (ultra-) hot exoplanets because the atmosphere is unable to redistribute all the energy deposited on the dayside, creating a strong thermal and often compositional dichotomy on the planet. This situa
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Ha, Tran, Arnaud Cuisset, Sébastien Payan, et al. "The first Vietnam School of Earth Observation: Atmospheric Remote Sensing and Molecular Spectroscopy." VIETNAM JOURNAL OF EARTH SCIENCES 41, no. 2 (2019): 138–55. http://dx.doi.org/10.15625/0866-7187/41/2/13724.

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In this review paper, we give an introduction to molecular spectroscopy and its relation to atmospheric remote sensing and examples of recent developments in spectroscopic experimental techniques and modelling. Atmospheric retrieval techniques, based on radiative transfer theories and molecular spectroscopy as well as some atmospheric remote sensing missions using spectroscopic techniques are presented.
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Zhong, J., M. Kumar, J. M. Anglada, et al. "Atmospheric Spectroscopy and Photochemistry at Environmental Water Interfaces." Annual Review of Physical Chemistry 70, no. 1 (2019): 45–69. http://dx.doi.org/10.1146/annurev-physchem-042018-052311.

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The air–water interface is ubiquitous in nature, as manifested in the form of the surfaces of oceans, lakes, and atmospheric aerosols. The aerosol interface, in particular, can play a crucial role in atmospheric chemistry. The adsorption of atmospheric species onto and into aerosols modifies their concentrations and chemistries. Moreover, the aerosol phase allows otherwise unlikely solution-phase chemistry to occur in the atmosphere. The effect of the air–water interface on these processes is not entirely known. This review summarizes recent theoretical investigations of the interactions of at
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Piette, Anjali A. A., Nikku Madhusudhan, and Avi M. Mandell. "HyDRo: atmospheric retrieval of rocky exoplanets in thermal emission." Monthly Notices of the Royal Astronomical Society 511, no. 2 (2021): 2565–84. http://dx.doi.org/10.1093/mnras/stab3612.

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ABSTRACT Emission spectroscopy is a promising technique to observe atmospheres of rocky exoplanets, probing both their chemistry and thermal profiles. We present hydro, an atmospheric retrieval framework for thermal emission spectra of rocky exoplanets. hydro does not make prior assumptions about the background atmospheric composition, and can therefore be used to interpret spectra of secondary atmospheres with unknown compositions. We use hydro to assess the chemical constraints which can be placed on rocky exoplanet atmospheres using JWST. First, we identify the best currently known rocky ex
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Zellweger, Christoph, Lukas Emmenegger, Mohd Firdaus, et al. "Assessment of recent advances in measurement techniques for atmospheric carbon dioxide and methane observations." Atmospheric Measurement Techniques 9, no. 9 (2016): 4737–57. http://dx.doi.org/10.5194/amt-9-4737-2016.

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Abstract. Until recently, atmospheric carbon dioxide (CO2) and methane (CH4) measurements were made almost exclusively using nondispersive infrared (NDIR) absorption and gas chromatography with flame ionisation detection (GC/FID) techniques, respectively. Recently, commercially available instruments based on spectroscopic techniques such as cavity ring-down spectroscopy (CRDS), off-axis integrated cavity output spectroscopy (OA-ICOS) and Fourier transform infrared (FTIR) spectroscopy have become more widely available and affordable. This resulted in a widespread use of these techniques at many
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Gaulme, Patrick, François-Xavier Schmider, and Ivan Gonçalves. "Measuring planetary atmospheric dynamics with Doppler spectroscopy." Astronomy & Astrophysics 617 (September 2018): A41. http://dx.doi.org/10.1051/0004-6361/201832868.

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Doppler imaging spectroscopy is the most reliable method of directly measuring wind speeds of planetary atmospheres of the solar system. However, most knowledge about atmospheric dynamics has been obtained with cloud-tracking technique, which consists of tracking visible features from images taken at different dates. Doppler imaging is as challenging (motions can be less than 100 m s−1) as it is appealing because it measures the speed of cloud particles instead of large cloud structures. A significant difference between wind speed measured by cloud-tracking and Doppler spectroscopy is expected
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Langeveld, Adam B., Nikku Madhusudhan, Samuel H. C. Cabot, and Simon T. Hodgkin. "Assessing telluric correction methods for Na detections with high-resolution exoplanet transmission spectroscopy." Monthly Notices of the Royal Astronomical Society 502, no. 3 (2021): 4392–404. http://dx.doi.org/10.1093/mnras/stab134.

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ABSTRACT Using high-resolution ground-based transmission spectroscopy to probe exoplanetary atmospheres is difficult due to the inherent telluric contamination from absorption in Earth’s atmosphere. A variety of methods have previously been used to remove telluric features in the optical regime and calculate the planetary transmission spectrum. In this paper we present and compare two such methods, specifically focusing on Na detections using high-resolution optical transmission spectra: (1) calculating the telluric absorption empirically based on the airmass and (2) using a model of the Earth
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Bue, Brian D., David R. Thompson, Shubhankar Deshpande, et al. "Neural network radiative transfer for imaging spectroscopy." Atmospheric Measurement Techniques 12, no. 4 (2019): 2567–78. http://dx.doi.org/10.5194/amt-12-2567-2019.

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Abstract. Visible–shortwave infrared imaging spectroscopy provides valuable remote measurements of Earth's surface and atmospheric properties. These measurements generally rely on inversions of computationally intensive radiative transfer models (RTMs). RTMs' computational expense makes them difficult to use with high-volume imaging spectrometers, and forces approximations such as lookup table interpolation and surface–atmosphere decoupling. These compromises limit the accuracy and flexibility of the remote retrieval; dramatic speed improvements in radiative transfer models could significantly
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Madhusudhan, Nikku. "Exoplanetary Atmospheres: Key Insights, Challenges, and Prospects." Annual Review of Astronomy and Astrophysics 57, no. 1 (2019): 617–63. http://dx.doi.org/10.1146/annurev-astro-081817-051846.

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Exoplanetary science is on the verge of an unprecedented revolution. The thousands of exoplanets discovered over the past decade have most recently been supplemented by discoveries of potentially habitable planets around nearby low-mass stars. Currently, the field is rapidly progressing toward detailed spectroscopic observations to characterize the atmospheres of these planets. Various surveys from space and the ground are expected to detect numerous more exoplanets orbiting nearby stars that make the planets conducive for atmospheric characterization. The current state of this frontier of exo
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Dissertations / Theses on the topic "Atmospheric spectroscopy"

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Bitter, Mario. "Cavity ring down spectroscopy for atmospheric applications." Thesis, University of Cambridge, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.616079.

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Shillings, Alexander James Leonard. "Atmospheric applications of broadband cavity ringdown spectroscopy." Thesis, University of Cambridge, 2010. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.608435.

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Stoltz, Årevik Emelie. "Spectroscopic analysis of exoplanet atmospheres : Ground-based high-resolution atmospheric characterization of hot Jupiters using near infrared spectroscopy." Thesis, Uppsala universitet, Institutionen för fysik och astronomi, 2015. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-260488.

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This report is exploring the possibility of characterizing hot Jupiter atmospheres using ground-based high-resolution spectroscopy. The ESO CRIRES infrared spectrometer is selected as the observing tool. Simulated observations are computed for known transiting systems. The properties of observations (noise, spectral coverage, resolution) are estimated with the CRIRES Exposure Time Calculator. An inverse method is used for reconstructing the transmission spectra of exoplanetary atmospheres and identifying spectral features. The possibility of using this method for non-transiting systems is exam
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Whiteley, Nicholas Ronald. "Techniques of diode laser spectroscopy and spectroscopic studies of isotopic ozone relevant to stratospheric science." Thesis, University of Hull, 1987. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.327890.

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Davies, Julia Ann. "Electron spectroscopy of selected atmospheric molecules and hydrocarbons." Thesis, University College London (University of London), 1995. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.283221.

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Aliwell, Simon Richard. "Measurement of atmospheric trace gases by absorption spectroscopy." Thesis, University of Cambridge, 1995. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.388668.

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Messenger, Stephen Joseph. "Exoplanet atmospheric exploration and categorization through transmission spectroscopy." Thesis, Massachusetts Institute of Technology, 2016. http://hdl.handle.net/1721.1/104592.

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Thesis: Ph. D., Massachusetts Institute of Technology, Department of Earth, Atmospheric, and Planetary Sciences, 2016.<br>Cataloged from PDF version of thesis.<br>Includes bibliographical references (pages 163-178).<br>Transiting exoplanets provide an amazing sample through which transmission spectroscopy observations, combined with atmospheric retrieval, can characterize the atmospheres of those planets. Out of that sample, super Earth exoplanets are particularly interesting because it is expected that their atmospheres will have a large diversity - from terrestrial-like to mini-Neptune-like.
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Anselmo, Christophe. "Atmospheric greenhouse gases detection by optical similitude absorption spectroscopy." Thesis, Lyon, 2016. http://www.theses.fr/2016LYSE1131/document.

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Cette thèse porte sur le développement théorique et expérimental d’une nouvelle méthodologie de détection des gaz à effet de serre basée sur la spectroscopie optique d’absorption. La question posée était : est-il possible d’évaluer de manière univoque la concentration d’un gaz à partir d’une mesure par spectroscopie d’absorption différentielle, dans laquelle l’étendue spectrale de la source lumineuse est plus large que celle d’une ou de plusieurs raies d'absorption de la molécule considérée et que, de plus la détection n’est pas résolue spectralement ? La réponse à cette question permettra d’e
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Parkes, Alistair Morgan. "Trace detection of atmospheric gases using cavity enhanced spectroscopy." Thesis, University of Bristol, 2005. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.411080.

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Ding, Yun. "High sensitivity absorption spectroscopy of molecules of atmospheric interest." Université Joseph Fourier (Grenoble), 2004. http://www.theses.fr/2004GRE10123.

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Le spectre d'absorption de molécules d'intérêt atmosphérique a été enregistré et analysé à l'aide de techniques expérimentales de très haute sensibilité : la technique ICLAS (Intracavity laser absorption spectroscopy) près de 1 æm, la spectroscopie par transformée de Fourier et la technique CW-CRDS (Cavity Ring Down Spectroscopy) dans l'infrarouge moyen. L'analyse et l'attribution rovibrationnelles des nombreuses bandes nouvelles 13CO2, ont été réalisées sur la base d'un Hamiltonien rovibrorationnel effectif. Un nouvel ajustement global tenant compte de nos nouvelles données et de toutes les d
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Books on the topic "Atmospheric spectroscopy"

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Torres, Rafael Escribano. Spectroscopy of the atmospheres. Consejo Superior de Investigaciones Científicas, 2010.

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H, Clark R. J., and Hester R. E, eds. Spectroscopy in environmental science. Wiley, 1995.

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Zvereva, N. A. Struktura i svoĭstva molekuli͡a︡rnykh kompleksov vody s malymi gazovymi sostavli͡a︡i͡u︡shchimi atmosfery. Rossiĭskai͡a︡ akademii͡a︡ nauk, Sibirskoe otdelenie, In-t optiki atmosfery, 2003.

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Kurucz, Robert L. Research on spectroscopy, opacity, and atmospheres: Annual report no. 2, for the period 15 December 1995 to 14 December 1996. Smithsonian Institution, Astrophysical Observatory, 1996.

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Weinreb, Michael P. Balloon-based infrared solar occultation measurements of stratospheric O, HO, HNO, and CFC1. National Environmental Satellite, Data, and Information Service, 1987.

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Weinreb, Michael P. Balloon-based infrared solar occultation measurements of stratospheric O, HO, HNO, and CFC1. National Environmental Satellite, Data, and Information Service, 1987.

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Jens, Bösenberg, Brassington David, and Simon Paul C, eds. Instrument development for atmospheric research and monitoring: Lidar profiling, DOAS, and tunable diode laser spectroscopy. Springer, 1997.

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Platt, Ulrich. Differential optical absorption spectroscopy: Principles and applications. Springer, 2008.

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Kogoma, Masuhiro. Generation and application of atmospheric pressure plasmas. Nova Science Publishers, 2011.

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Meier, Arndt. Determination of atmospheric trace gas amounts and corresponding natural isotopic ratios by means of ground-based FTIR spectroscopy in the high Arctic. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1997.

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Book chapters on the topic "Atmospheric spectroscopy"

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Weaver, A., and A. R. Ravishankara. "Atmospheric Photochemistry and Spectroscopy." In Low-Temperature Chemistry of the Atmosphere. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79063-8_6.

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Bernath, Peter. "Atmospheric Chemistry Experiment (ACE): An Overview." In Spectroscopy from Space. Springer Netherlands, 2001. http://dx.doi.org/10.1007/978-94-010-0832-7_9.

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Torvela, Heikki. "Optical Spectroscopy in Emission Measurements." In Measurement of Atmospheric Emissions. Springer London, 1994. http://dx.doi.org/10.1007/978-1-4471-3482-4_6.

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Harris, P., R. MacFarlane, N. Reynolds, and A. C. Vikis. "A Portable Monitor of Atmospheric Pollutants." In Spectroscopy of Inorganic Bioactivators. Springer Netherlands, 1989. http://dx.doi.org/10.1007/978-94-009-2409-3_6.

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Perrin, Agnès. "Review on the Existing Spectroscopic Databases for Atmospheric Applications." In Spectroscopy from Space. Springer Netherlands, 2001. http://dx.doi.org/10.1007/978-94-010-0832-7_15.

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Helten, M., W. Pätz, D. H. Ehhalt, and E. P. Röth. "Measurements of Nighttime NO3 and NO2 in the Stratosphere by Matrixisolation and ESR Spectroscopy." In Atmospheric Ozone. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-5313-0_40.

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Wlodarczak, Georges, Jean-Marcel Colmont, and Francois Rohart. "Quantitative Rotational Spectroscopy for Atmospheric Research." In Remote Sensing of the Atmosphere for Environmental Security. Springer Netherlands, 2006. http://dx.doi.org/10.1007/978-1-4020-5090-9_14.

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Wolf, J. P., H. J. Kölsch, P. Rairoux, and L. Wöste. "Remote Detection of Atmospheric Pollutants Using Differential Absorption Lidar Techniques." In Applied Laser Spectroscopy. Springer US, 1990. http://dx.doi.org/10.1007/978-1-4684-1342-7_34.

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Fischer, Herbert. "Spectroscopic Measurements with MIPAS (Michelson Interferometer for Passive Atmospheric Sounding)." In Spectroscopy from Space. Springer Netherlands, 2001. http://dx.doi.org/10.1007/978-94-010-0832-7_10.

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Birk, M., D. Hausamann, F. Schreier, and G. Wagner. "High Resolution Infrared Laboratory Spectroscopy of Atmospheric Constituents at DLR." In Spectroscopy from Space. Springer Netherlands, 2001. http://dx.doi.org/10.1007/978-94-010-0832-7_14.

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Conference papers on the topic "Atmospheric spectroscopy"

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Walker, K., P. Bernath, M. Soucy, and F. Chateauneuf. "The Waterloo Atmospheric Observatory." In Fourier Transform Spectroscopy. OSA, 2003. http://dx.doi.org/10.1364/fts.2003.fmd15.

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Gero, P. Jonathan, Robert O. Knuteson, Denny J. Hackel, et al. "A New Marine Atmospheric Emitted Radiance Interferometer for Shipboard Atmospheric and Oceanic Observations." In Fourier Transform Spectroscopy. OSA, 2015. http://dx.doi.org/10.1364/fts.2015.jm1a.2.

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Boone, Chris, and Peter Bernath. "The Atmospheric Chemistry Experiment (ACE)." In Fourier Transform Spectroscopy. OSA, 2001. http://dx.doi.org/10.1364/fts.2001.fmc3.

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Richter, Dirk, Petter Weibring, James G. Walega, and Alan Fried. "Airborne Atmospheric Laser Spectroscopy." In CLEO: Applications and Technology. OSA, 2013. http://dx.doi.org/10.1364/cleo_at.2013.ath1i.3.

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Richter, Dirk, Petter Weibring, James G. Walega, and Alan Fried. "Airborne Atmospheric Laser Spectroscopy." In CLEO: Science and Innovations. OSA, 2013. http://dx.doi.org/10.1364/cleo_si.2013.cw3l.6.

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McMillan, W. Wallace, Kurt Lightner, Robert O. Knuteson, et al. "BBAERI – The Baltimore Bomem Atmospheric Emitted Radiance Interferometer: A Prototype Commercial FTIR Atmospheric Sounding System." In Fourier Transform Spectroscopy. OSA, 2001. http://dx.doi.org/10.1364/fts.2001.fmc4.

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Flaud, Jean-Marie. "ATMOSPHERIC REMOTE SENSING AND LABORATORY SPECTROSCOPY." In Fourier Transform Spectroscopy. OSA, 1999. http://dx.doi.org/10.1364/fts.1999.fwc1.

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Bernath, Peter F. "Atmospheric Chemistry Experiment (ACE): Mission overview." In Fourier Transform Spectroscopy. OSA, 2005. http://dx.doi.org/10.1364/fts.2005.jma3.

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Bernath, Peter F. "Atmospheric Chemistry Experiment (ACE): Latest Results." In Fourier Transform Spectroscopy. OSA, 2007. http://dx.doi.org/10.1364/fts.2007.jma2.

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Bernath, Peter F. "Atmospheric Chemistry Experiment (ACE): Latest Results." In Fourier Transform Spectroscopy. OSA, 2011. http://dx.doi.org/10.1364/fts.2011.fmb2.

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Reports on the topic "Atmospheric spectroscopy"

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Johnson, P. Studies of atmospheric molecules by multiphoton spectroscopy. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/5075777.

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Johnson, P. M. Studies of atmospheric molecules by multiphoton spectroscopy. Office of Scientific and Technical Information (OSTI), 1991. http://dx.doi.org/10.2172/5394803.

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Allman, Ronald E., and Robert J. Foltynowicz. Terahertz time-domain spectroscopy of atmospheric water vapor from 0.4 to 2.7 THz. Office of Scientific and Technical Information (OSTI), 2005. http://dx.doi.org/10.2172/876363.

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Johnson, P. M. Studies of atmospheric molecules by multiphoton spectroscopy. Progress report, July 15, 1989--October, 1991. Office of Scientific and Technical Information (OSTI), 1991. http://dx.doi.org/10.2172/10139564.

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Mallik, Vishnuu, Mark Flage, and Connor Chapman. Infrared Photography, Atmospheric Spectroscopy, and Solar Corona Photography using a High-Altitude Ballooning Platform. Iowa State University. Library. Digital Press, 2011. http://dx.doi.org/10.31274/ahac.8140.

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McCall, Benjamin J. YIP - Ultrasensitive Infrared Spectroscopy of Molecular Ions of Importance in Atmospheric Chemistry and Propulsion. Defense Technical Information Center, 2010. http://dx.doi.org/10.21236/ada547434.

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Dobrynin, Danil, and Alexander Fridman. Experimental Investigation of Nanosecond and Subnanosecond Pulsed DBD in Atmospheric Air: Fast Imaging and Spectroscopy. Office of Scientific and Technical Information (OSTI), 2020. http://dx.doi.org/10.2172/1691468.

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Brault, J., and G. Stokes. Atmospheric CO sub 2 abundance: An archival study of spectroscopic data. Office of Scientific and Technical Information (OSTI), 1985. http://dx.doi.org/10.2172/7253464.

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Dyke, J. M. Gas-Phase Photoelectron Spectroscopy of Metals and Metal Oxides of Importance in the Upper Atmosphere. Defense Technical Information Center, 1987. http://dx.doi.org/10.21236/ada187771.

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Bostrom, Gregory. Development of a Portable Cavity Ring-Down Spectroscopic Technique for Measuring Stable Isotopes in Atmospheric Methane. Portland State University Library, 2000. http://dx.doi.org/10.15760/etd.51.

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