Reactive indoor air chemistry and health—A workshop summary
The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas a...
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| Published in: | International journal of hygiene and environmental health Vol. 220; no. 8; pp. 1222 - 1229 |
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| Main Authors: | , , , , , , |
| Format: | Journal Article |
| Language: | English |
| Published: |
Germany
Elsevier GmbH
01.11.2017
Elsevier |
| Series: | International journal of hygiene and environmental health |
| Subjects: | |
| ISSN: | 1438-4639, 1618-131X, 1618-131X |
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| Abstract | The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas and particulate-phase) formed by indoor chemistry. An understanding of occupant exposure can be developed through the investigation of indoor oxidants, the use of derivatization techniques, atmospheric pressure detection, the development of real-time technologies, and improved complex modeling techniques. Moreover, the connection between exposure and health effects is now receiving more attention from the research community. Nevertheless, a need still exists for improved understanding of the possible link between indoor air chemistry and observed acute or chronic health effects and long-term effects such as work-related asthma. |
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| AbstractList | The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas and particulate-phase) formed by indoor chemistry. An understanding of occupant exposure can be developed through the investigation of indoor oxidants, the use of derivatization techniques, atmospheric pressure detection, the development of real-time technologies, and improved complex modeling techniques. Moreover, the connection between exposure and health effects is now receiving more attention from the research community. Nevertheless, a need still exists for improved understanding of the possible link between indoor air chemistry and observed acute or chronic health effects and long-term effects such as work-related asthma.The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas and particulate-phase) formed by indoor chemistry. An understanding of occupant exposure can be developed through the investigation of indoor oxidants, the use of derivatization techniques, atmospheric pressure detection, the development of real-time technologies, and improved complex modeling techniques. Moreover, the connection between exposure and health effects is now receiving more attention from the research community. Nevertheless, a need still exists for improved understanding of the possible link between indoor air chemistry and observed acute or chronic health effects and long-term effects such as work-related asthma. The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas and particulate-phase) formed by indoor chemistry. An understanding of occupant exposure can be developed through the investigation of indoor oxidants, the use of derivatization techniques, atmospheric pressure detection, the development of real-time technologies, and improved complex modeling techniques. Moreover, the connection between exposure and health effects is now receiving more attention from the research community. Nevertheless, a need still exists for improved understanding of the possible link between indoor air chemistry and observed acute or chronic health effects and long-term effects such as work-related asthma. The chemical composition of indoor air changes due to the reactive nature of the indoor environment. Historically, only the stable parent compounds were investigated due to their ease of measurement by conventional methods. Today, however, scientists can better characterize oxidation products (gas and particulatephase) formed by indoor chemistry. An understanding of occupant exposure can be developed through the investigation of indoor oxidants, the use of derivatization techniques, atmospheric pressure detection, the development of real-time technologies, and improved complex modeling techniques. Moreover, the connection between exposure and health effects is now receiving more attention from the research community. Nevertheless, a need still exists for improved understanding of the possible link between indoor air chemistry and observed acute or chronic health effects and long-term effects such as work-related asthma. |
| Author | Carslaw, N. Waring, M.S. Ham, J.E. Schoemaecker, C. Wolkoff, P. Wells, J.R. Nelissen, I. |
| AuthorAffiliation | d Drexel University, Philadelphia, PA, USA c Environment Department, University of York, York, UK a NIOSH/HELD/EAB, Morgantown, WV, USA f National Research Center for the Working Environment, Copenhagen, Denmark e Flemish Institute for Technological Research (VITO), Mol Belgium b University Lille, CNRS, PC2A Laboratory, Lille, France |
| AuthorAffiliation_xml | – name: e Flemish Institute for Technological Research (VITO), Mol Belgium – name: b University Lille, CNRS, PC2A Laboratory, Lille, France – name: a NIOSH/HELD/EAB, Morgantown, WV, USA – name: d Drexel University, Philadelphia, PA, USA – name: c Environment Department, University of York, York, UK – name: f National Research Center for the Working Environment, Copenhagen, Denmark |
| Author_xml | – sequence: 1 givenname: J.R. surname: Wells fullname: Wells, J.R. email: ozw0@cdc.gov organization: NIOSH/HELD/EAB, Morgantown, WV, USA – sequence: 2 givenname: C. surname: Schoemaecker fullname: Schoemaecker, C. organization: University Lille, CNRS, PC2A Laboratory, Lille, France – sequence: 3 givenname: N. surname: Carslaw fullname: Carslaw, N. organization: Environment Department, University of York, York, UK – sequence: 4 givenname: M.S. surname: Waring fullname: Waring, M.S. organization: Drexel University, Philadelphia, PA, USA – sequence: 5 givenname: J.E. surname: Ham fullname: Ham, J.E. organization: NIOSH/HELD/EAB, Morgantown, WV, USA – sequence: 6 givenname: I. surname: Nelissen fullname: Nelissen, I. organization: Flemish Institute for Technological Research (VITO), Mol, Belgium – sequence: 7 givenname: P. surname: Wolkoff fullname: Wolkoff, P. organization: National Research Center for the Working Environment, Copenhagen, Denmark |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/28964679$$D View this record in MEDLINE/PubMed https://hal.univ-lille.fr/hal-02336632$$DView record in HAL |
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| Keywords | Oxidants Reactive indoor chemistry Indoor air modeling Health effects of indoor air chemistry Indoor air quality |
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| SubjectTerms | Air Pollutants - adverse effects Air Pollutants - analysis Air Pollutants - chemistry Air Pollution, Indoor - adverse effects Air Pollution, Indoor - analysis Animals Chemical Physics Chemical Sciences Environmental Exposure Health effects of indoor air chemistry Humans Indoor air modeling Indoor air quality Models, Theoretical or physical chemistry Oxidants Oxidants - adverse effects Oxidants - chemistry Physics Reactive indoor chemistry Theoretical and |
| Title | Reactive indoor air chemistry and health—A workshop summary |
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