Literature DB >> 11089331

Ozone in indoor environments: concentration and chemistry.

C J Weschler1.   

Abstract

The concentration of indoor ozone depends on a number of factors, including the outdoor ozone concentration, air exchange rates, indoor emission rates, surface removal rates, and reactions between ozone and other chemicals in the air. Outdoor ozone concentrations often display strong diurnal variations, and this adds a dynamic excitation to the transport and chemical mechanisms at play. Hence, indoor ozone concentrations can vary significantly from hour-to-hour, day-to-day, and season-to-season, as well as from room-to-room and structure-to-structure. Under normal conditions, the half-life of ozone indoors is between 7 and 10 min and is determined primarily by surface removal and air exchange. Although reactions between ozone and most other indoor pollutants are thermodynamically favorable, in the majority of cases they are quite slow. Rate constants for reactions of ozone with the more commonly identified indoor pollutants are summarized in this article. They show that only a small fraction of the reactions occur at a rate fast enough to compete with air exchange, assuming typical indoor ozone concentrations. In the case of organic compounds, the "fast" reactions involve compounds with unsaturated carbon-carbon bonds. Although such compounds typically comprise less than 10% of indoor pollutants, their reactions with ozone have the potential to be quite significant as sources of indoor free radicals and multifunctional (-C=O, -COOH, -OH) stable compounds that are often quite odorous. The stable compounds are present as both gas phase and condensed phase species, with the latter contributing to the overall concentration of indoor submicron particles. Indeed, ozone/alkene reactions provide a link between outdoor ozone, outdoor particles and indoor particles. Indoor ozone and the products derived from reactions initiated by indoor ozone are potentially damaging to both human health and materials; more detailed explication of these impacts is an area of active investigation.

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Year:  2000        PMID: 11089331     DOI: 10.1034/j.1600-0668.2000.010004269.x

Source DB:  PubMed          Journal:  Indoor Air        ISSN: 0905-6947            Impact factor:   5.770


  55 in total

1.  Changes in eye blink frequency as a measure of trigeminal stimulation by exposure to limonene oxidation products, isoprene oxidation products and nitrate radicals.

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2.  Association of Ozone Exposure With Cardiorespiratory Pathophysiologic Mechanisms in Healthy Adults.

Authors:  Drew B Day; Jianbang Xiang; Jinhan Mo; Feng Li; Mingkei Chung; Jicheng Gong; Charles J Weschler; Pamela A Ohman-Strickland; Jan Sundell; Wenguo Weng; Yinping Zhang; Junfeng Jim Zhang
Journal:  JAMA Intern Med       Date:  2017-09-01       Impact factor: 21.873

3.  Effect modification by community characteristics on the short-term effects of ozone exposure and mortality in 98 US communities.

Authors:  Michelle L Bell; Francesca Dominici
Journal:  Am J Epidemiol       Date:  2008-02-25       Impact factor: 4.897

4.  Sources of indoor air pollution in New York City residences of asthmatic children.

Authors:  Rima Habre; Brent Coull; Erin Moshier; James Godbold; Avi Grunin; Amit Nath; William Castro; Neil Schachter; Annette Rohr; Meyer Kattan; John Spengler; Petros Koutrakis
Journal:  J Expo Sci Environ Epidemiol       Date:  2013-10-30       Impact factor: 5.563

5.  Formaldehyde in the indoor environment.

Authors:  Tunga Salthammer; Sibel Mentese; Rainer Marutzky
Journal:  Chem Rev       Date:  2010-04-14       Impact factor: 60.622

6.  The lasting effect of limonene-induced particle formation on air quality in a genuine indoor environment.

Authors:  Carolin Rösch; Dirk K Wissenbach; Martin von Bergen; Ulrich Franck; Manfred Wendisch; Uwe Schlink
Journal:  Environ Sci Pollut Res Int       Date:  2015-05-14       Impact factor: 4.223

7.  Thirdhand Smoke: New Evidence, Challenges, and Future Directions.

Authors:  Peyton Jacob; Neal L Benowitz; Hugo Destaillats; Lara Gundel; Bo Hang; Manuela Martins-Green; Georg E Matt; Penelope J E Quintana; Jonathan M Samet; Suzaynn F Schick; Prue Talbot; Noel J Aquilina; Melbourne F Hovell; Jian-Hua Mao; Todd P Whitehead
Journal:  Chem Res Toxicol       Date:  2016-12-21       Impact factor: 3.739

Review 8.  Assessment of environmental and ergonomic hazard associated to printing and photocopying: a review.

Authors:  Abhishek Nandan; N A Siddiqui; Pankaj Kumar
Journal:  Environ Geochem Health       Date:  2018-10-22       Impact factor: 4.609

9.  Quantification of the impact of cooking processes on indoor concentrations of volatile organic species and primary and secondary organic aerosols.

Authors:  Felix Klein; Urs Baltensperger; André S H Prévôt; Imad El Haddad
Journal:  Indoor Air       Date:  2019-09-17       Impact factor: 5.770

10.  Measurement of secondary products during oxidation reactions of terpenes and ozone based on the PTR-MS analysis: effects of coexistent carbonyl compounds.

Authors:  Yusuke Ishizuka; Masahiro Tokumura; Atsushi Mizukoshi; Miyuki Noguchi; Yukio Yanagisawa
Journal:  Int J Environ Res Public Health       Date:  2010-11-01       Impact factor: 3.390

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