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Effective URL: https://pubs.acs.org/doi/10.1021/acs.est.0c04702
Submission: On May 15 via manual from CA — Scanned from CA
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* ACS * ACS Publications * C&EN * CAS Find my institution Log In Hydrogen Peroxide Emission and Fate Indoors during Non-bleach Cleaning: A Chamber and Modeling Study Share Share on * Facebook * Twitter * WeChat * Linked In * Reddit * Email Environ. Sci. Technol.All Publications/Website OR SEARCH CITATIONS Environmental Science & TechnologyAccounts of Chemical ResearchAccounts of Materials ResearchACS Agricultural Science & TechnologyACS Applied Bio MaterialsACS Applied Electronic MaterialsACS Applied Energy MaterialsACS Applied Engineering MaterialsACS Applied Materials & InterfacesACS Applied Nano MaterialsACS Applied Optical MaterialsACS Applied Polymer MaterialsACS Bio & Med Chem AuACS Biomaterials Science & EngineeringACS CatalysisACS Central ScienceACS Chemical BiologyACS Chemical Health & SafetyACS Chemical NeuroscienceACS Combinatorial ScienceACS Earth and Space ChemistryACS Energy LettersACS Engineering AuACS Environmental AuACS ES&T AirACS ES&T EngineeringACS ES&T WaterACS Food Science & TechnologyACS Infectious DiseasesACS Macro LettersACS Materials AuACS Materials LettersACS Measurement Science AuACS Medicinal Chemistry LettersACS NanoACS Nanoscience AuACS OmegaACS Organic & Inorganic AuACS Pharmacology & Translational ScienceACS PhotonicsACS Physical Chemistry AuACS Polymers AuACS SensorsACS Sustainable Chemistry & EngineeringACS Sustainable Resource ManagementACS Synthetic BiologyAnalytical ChemistryArtificial PhotosynthesisBiochemistryBioconjugate ChemistryBiomacromoleculesBiotechnology ProgressC&EN Global EnterpriseChem & Bio EngineeringChemical & Biomedical ImagingChemical & Engineering News ArchiveChemical Health & SafetyChemical Health & SafetyChemical Research in ToxicologyChemical ReviewsChemistry of MaterialsCrystal Growth & DesignEnergy & FuelsEnvironment & HealthEnvironmental Science & Technology LettersI&EC Product Research and DevelopmentIndustrial & Engineering ChemistryIndustrial & Engineering Chemistry Analytical EditionIndustrial & Engineering Chemistry Chemical & Engineering Data SeriesIndustrial & Engineering Chemistry FundamentalsIndustrial & Engineering Chemistry Process Design and DevelopmentIndustrial & Engineering Chemistry Product Research and DevelopmentIndustrial & Engineering Chemistry ResearchIndustrial and Engineering Chemistry, News EditionInorganic ChemistryJACS AuJournal of the American Chemical SocietyJournal of Agricultural and Food ChemistryJournal of Chemical & Engineering DataJournal of Chemical DocumentationJournal of Chemical EducationJournal of Chemical Health & SafetyJournal of Chemical Information and Computer SciencesJournal of Chemical Information and ModelingJournal of Chemical Theory and ComputationJournal of Combinatorial ChemistryJournal of Industrial & Engineering ChemistryJournal of Medicinal and Pharmaceutical ChemistryJournal of Medicinal ChemistryJournal of Natural ProductsThe Journal of Organic ChemistryThe Journal of Physical ChemistryThe Journal of Physical ChemistryThe Journal of Physical Chemistry AThe Journal of Physical Chemistry BThe Journal of Physical Chemistry CThe Journal of Physical Chemistry LettersJournal of Proteome ResearchJournal of the American Society for Mass SpectrometryJournal of the American Society for Mass SpectrometryJournal of the American Society for Mass SpectrometryLangmuirMacromoleculesMolecular PharmaceuticsNano LettersNews Edition, American Chemical SocietyOrganic LettersOrganic Process Research & DevelopmentOrganometallicsPrecision ChemistryProduct R&DSciMeetingsThe Journal of Physical and Colloid Chemistry My Activity Recently Viewed YOU HAVE NOT VISITED ANY ARTICLES YET, PLEASE VISIT SOME ARTICLES TO SEE CONTENTS HERE. Publications * publications * my Activity * Recently Viewed * user resources * Access Options * Authors & Reviewers * ACS Members * Curated Content * eAlerts * RSS & Mobile * for organizations * Products & Services * Get Access * Manage My Account * support * Website Demos & Tutorials * Support FAQs * Live Chat with Agent * For Advertisers * For Librarians & Account Managers * pairing * Pair a device * My Profile Login Logout Pair a device * about us * Overview * ACS & Open Access * Partners * Blog * Events Recently Viewed YOU HAVE NOT VISITED ANY ARTICLES YET, PLEASE VISIT SOME ARTICLES TO SEE CONTENTS HERE. Publications CONTENT TYPES * ALL TYPES SUBJECTS Publications: All Types Download Hi-Res ImageDownload to MS-PowerPointCite This:Environ. Sci. Technol. 2020, 54, 24, 15643-15651 ADVERTISEMENT RETURN TO ISSUEPREVAnthropogenic Impact...Anthropogenic Impacts on the AtmosphereNEXT Get e-Alertsclose HYDROGEN PEROXIDE EMISSION AND FATE INDOORS DURING NON-BLEACH CLEANING: A CHAMBER AND MODELING STUDY * Shan Zhou Shan Zhou Department of Chemistry, Syracuse University, Syracuse, New York 13244, United States More by Shan Zhou http://orcid.org/0000-0001-5031-1024 * , * Zhenlei Liu Zhenlei Liu Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, New York 13244, United States More by Zhenlei Liu * , * Zixu Wang Zixu Wang Department of Environment and Geography, University of York, York YO10 5DD, U.K. More by Zixu Wang * , * Cora J. Young Cora J. Young Department of Chemistry, York University, Toronto, Ontario M3J 1P3, Canada More by Cora J. Young http://orcid.org/0000-0002-6908-5829 * , * Trevor C. VandenBoer Trevor C. VandenBoer Department of Chemistry, York University, Toronto, Ontario M3J 1P3, Canada More by Trevor C. VandenBoer http://orcid.org/0000-0001-8926-4237 * , * B. Beverly Guo B. Beverly Guo Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, New York 13244, United States More by B. Beverly Guo * , * Jianshun Zhang Jianshun Zhang Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, New York 13244, United States More by Jianshun Zhang * , * Nicola Carslaw Nicola Carslaw Department of Environment and Geography, University of York, York YO10 5DD, U.K. More by Nicola Carslaw * , and * Tara F. Kahan* Tara F. Kahan Department of Chemistry, Syracuse University, Syracuse, New York 13244, United States Department of Chemistry, University of Saskatchewan, Saskatoon, Saskatchewan S7N 5C9, Canada *Email: tara.kahan@usask.ca. Tel: (306) 966-1168. More by Tara F. Kahan http://orcid.org/0000-0001-5074-1155 * Cite this: Environ. Sci. Technol. 2020, 54, 24, 15643–15651 Publication Date (Web):December 1, 2020 PUBLICATION HISTORY * Received15 July 2020 * Accepted13 November 2020 * Revised4 November 2020 * Published online1 December 2020 * Published inissue 15 December 2020 https://pubs.acs.org/doi/10.1021/acs.est.0c04702 https://doi.org/10.1021/acs.est.0c04702 research-article ACS Publications Copyright © 2020 American Chemical Society Request reuse permissions ARTICLE VIEWS 1623 ALTMETRIC 112 CITATIONS 19 LEARN ABOUT THESE METRICS Article Views are the COUNTER-compliant sum of full text article downloads since November 2008 (both PDF and HTML) across all institutions and individuals. These metrics are regularly updated to reflect usage leading up to the last few days. Citations are the number of other articles citing this article, calculated by Crossref and updated daily. Find more information about Crossref citation counts. 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Access Through Your Institution Add or Change Institution Other access options Get e-Alertsclose Supporting Info (1)»Supporting Information Supporting Information SUBJECTS: * Aldehydes, * Atmospheric chemistry, * Kinetic parameters, * Photodissociation, * Volatile organic compounds Get e-Alertsclose Environmental Science & Technology Get e-Alerts ABSTRACT Activities such as household cleaning can greatly alter the composition of air in indoor environments. We continuously monitored hydrogen peroxide (H2O2) from household non-bleach surface cleaning in a chamber designed to simulate a residential room. Mixing ratios of up to 610 ppbv gaseous H2O2 were observed following cleaning, orders of magnitude higher than background levels (sub-ppbv). Gaseous H2O2 levels decreased rapidly and irreversibly, with removal rate constants (kH2O2) 17–73 times larger than air change rate (ACR). Increasing the surface-area-to-volume ratio within the room caused peak H2O2 mixing ratios to decrease and kH2O2 to increase, suggesting that surface uptake dominated H2O2 loss. Volatile organic compound (VOC) levels increased rapidly after cleaning and then decreased with removal rate constants 1.2–7.2 times larger than ACR, indicating loss due to surface partitioning and/or chemical reactions. We predicted photochemical radical production rates and steady-state concentrations in the simulated room using a detailed chemical model for indoor air (the INDCM). Model results suggest that, following cleaning, H2O2 photolysis increased OH concentrations by 10–40% to 9.7 × 105 molec cm–3 and hydroperoxy radical (HO2) concentrations by 50–70% to 2.3 × 107 molec cm–3 depending on the cleaning method and lighting conditions. READ THIS ARTICLE To access this article, please review the available access options below. Get instant access PURCHASE ACCESS Read this article for 48 hours. Check out below using your ACS ID or as a guest. Purchase Access Restore my guest access Recommended ACCESS THROUGH YOUR INSTITUTION You may have access to this article through your institution. Your institution does not have access to this content. You can change your affiliated institution below. Access Through Access is not provided via Institution Name Loading Institutional Login Options... Access Through Your Institution Add or Change Institution Recommended LOG IN TO ACCESS You may have access to this article with your ACS ID if you have previously purchased it or have ACS member benefits. Log in below. Login with ACS ID * Purchase access Purchase this article for 48 hours $48.00 Add to cart Purchase this article for 48 hours Checkout SUPPORTING INFORMATION ARTICLE SECTIONS Jump To * Abstract * Supporting Information -------------------------------------------------------------------------------- The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acs.est.0c04702. * Photolysis rate constants of key species in the model; VOC decay rates during the regular cleaning event; spectral photon flux of two light sources in the room; modeled and observed H2O2 time series; decay rate constants of H2O2; H2O2 time series during elevated ventilation periods; NMR results; and predicted radical concentrations during the deep cleaning event and the regular cleaning including VOC emissions (PDF) * es0c04702_si_001.pdf (2.02 MB) Hydrogen Peroxide Emission and Fate Indoors during Non-bleach Cleaning: A Chamber and Modeling Study 112 views 57 shares 0 downloads Skip to figshare navigation ShareDownload figshare TERMS & CONDITIONS Most electronic Supporting Information files are available without a subscription to ACS Web Editions. Such files may be downloaded by article for research use (if there is a public use license linked to the relevant article, that license may permit other uses). Permission may be obtained from ACS for other uses through requests via the RightsLink permission system: http://pubs.acs.org/page/copyright/permissions.html. CITED BY Citation Statements beta Smart citations by scite.ai include citation statements extracted from the full text of the citing article. The number of the statements may be higher than the number of citations provided by ACS Publications if one paper cites another multiple times or lower if scite has not yet processed some of the citing articles. * Supporting Supporting5 * Mentioning Mentioning33 * Contrasting Contrasting0 Explore this article's citation statements on scite.ai powered by This article is cited by 19 publications. 1. Pearl Abue, Nirvan Bhattacharyya, Mengjia Tang, Leif G. Jahn, Daniel Blomdahl, David T. Allen, Richard L. Corsi, Atila Novoselac, Pawel K. Mistzal, Lea Hildebrandt Ruiz. Emissions from Hydrogen Peroxide Disinfection and Their Interaction with Mask Surfaces. ACS Engineering Au 2024, 4 (2) , 204-212. https://doi.org/10.1021/acsengineeringau.3c00036 2. Dustin Poppendieck, Heidi Hubbard, Richard L. Corsi. Hydrogen Peroxide Vapor as an Indoor Disinfectant: Removal to Indoor Materials and Associated Emissions of Organic Compounds. Environmental Science & Technology Letters 2021, 8 (4) , 320-325. https://doi.org/10.1021/acs.estlett.0c00948 3. Toby J. Carter, David R Shaw, David Carslaw, Nicola Carslaw. Indoor Cooking and Cleaning as a Source of Outdoor Air Pollution in Urban Environments. Environmental Science: Processes & Impacts 2024, https://doi.org/10.1039/D3EM00512G 4. Fusuo Xu, Jialei Shen, Zhi Gao. A field measurement study of the effects of outdoor pollutants and room volumes on indoor fine particle and ozone concentrations. Journal of Building Engineering 2023, 78 , 107615. https://doi.org/10.1016/j.jobe.2023.107615 5. Marc Webb, Liyong Cui, Glenn Morrison, Karsten Baumann, Jason D. Surratt, Zhenfa Zhang, Joanna Atkin, Barbara J. Turpin. The fate of organic peroxides indoors: quantifying humidity-dependent uptake on naturally soiled indoor window glass. Environmental Science: Processes & Impacts 2023, 25 (6) , 1031-1048. https://doi.org/10.1039/D3EM00041A 6. Pedro A. F. Souza, Shan Zhou, Tara F. Kahan. Hydrogen peroxide emissions from surface cleaning in a single-family residence. Environmental Science: Processes & Impacts 2023, 25 (4) , 781-790. https://doi.org/10.1039/D2EM00434H 7. Hind A. Al-Abadleh. Interfacial geochemistry of iron applied to atmospheric and oceanic environments. Applied Geochemistry 2023, 150 , 105595. https://doi.org/10.1016/j.apgeochem.2023.105595 8. Toby J. Carter, Dustin G. Poppendieck, David Shaw, Nicola Carslaw. A Modelling Study of Indoor Air Chemistry: The Surface Interactions of Ozone and Hydrogen Peroxide. Atmospheric Environment 2023, 297 , 119598. https://doi.org/10.1016/j.atmosenv.2023.119598 9. Annastacia D. Stubbs, Melodie Lao, Chen Wang, Jonathan P. D. Abbatt, John Hoffnagle, Trevor C. VandenBoer, Tara F. Kahan. Near-source hypochlorous acid emissions from indoor bleach cleaning. Environmental Science: Processes & Impacts 2023, 25 (1) , 56-65. https://doi.org/10.1039/D2EM00405D 10. David R. Shaw, Toby J. Carter, Helen L. Davies, Ellen Harding-Smith, Elliott C. Crocker, Georgia Beel, Zixu Wang, Nicola Carslaw. INCHEM-Py v1.2: a community box model for indoor air chemistry. Geoscientific Model Development 2023, 16 (24) , 7411-7431. https://doi.org/10.5194/gmd-16-7411-2023 11. María Teresa Baeza_Romero, Marzenna R. Dudzinska, Mehdi Amouei Torkmahalleh, Nelson Barros, Ann Marie Coggins, Duygu Gazioglu Ruzgar, Ivana Kildsgaard, Motahareh Naseri, Li Rong, John Saffell, Ana Maria Scutaru, Amelia Staszowska. A review of critical residential buildings parameters and activities when investigating indoor air quality and pollutants. Indoor Air 2022, 32 (11) https://doi.org/10.1111/ina.13144 12. Florentina Villanueva, Milagros Ródenas, Aime Ruus, John Saffell, Marta F. Gabriel. Sampling and analysis techniques for inorganic air pollutants in indoor air. Applied Spectroscopy Reviews 2022, 57 (7) , 531-579. https://doi.org/10.1080/05704928.2021.2020807 13. Zehui Li, Guangya Jiang, Yaling Wang, Meijuan Tan, Youpeng Cao, Enze Tian, Lingling Zhang, Xiao Chen, Mengze Zhao, Yuheng Jiang, Yuyang Luo, Yuanhao Zheng, Zizhen Ma, Dongbin Wang, Wangyang Fu, Kaihui Liu, Cheng Tang, Jingkun Jiang. Detecting residual chemical disinfectant using an atomic Co–N x –C anchored neuronal-like carbon catalyst modified amperometric sensor. Environmental Science: Nano 2022, 9 (5) , 1759-1769. https://doi.org/10.1039/D1EN01111A 14. Tara F. Kahan, Cora J. Young, Shan Zhou. Indoor Photochemistry. 2022, 1-30. https://doi.org/10.1007/978-981-10-5155-5_30-1 15. Tara F. Kahan, Cora J. Young, Shan Zhou. Indoor Photochemistry. 2022, 855-884. https://doi.org/10.1007/978-981-16-7680-2_30 16. Ghada Tagorti, Bülent Kaya. Genotoxic effect of microplastics and COVID-19: The hidden threat. Chemosphere 2022, 286 , 131898. https://doi.org/10.1016/j.chemosphere.2021.131898 17. Shan Zhou, Tara F. Kahan. Spatiotemporal characterization of irradiance and photolysis rate constants of indoor gas‐phase species in the UTest house during HOMEChem. Indoor Air 2022, 32 (1) https://doi.org/10.1111/ina.12966 18. Shan Zhou, Shawn F. Kowal, Alyssa R. Cregan, Tara F. Kahan. Factors affecting wavelength‐resolved ultraviolet irradiance indoors and their impacts on indoor photochemistry. Indoor Air 2021, 31 (4) , 1187-1198. https://doi.org/10.1111/ina.12784 19. Ian Mitchell, Gaynor Govias. Environmental Issues in Asthma Management. 2021, 131-173. https://doi.org/10.1007/978-3-030-77896-5_5 Download PDF back PARTNERS * 1155 Sixteenth Street N.W. * Washington, DC 20036 * Copyright © 2024 American Chemical Society ABOUT * About ACS Publications * ACS & Open Access * ACS Membership * ACS Publications Blog RESOURCES AND INFORMATION * Journals A-Z * Books and Reference * Advertising Media Kit * Institutional Sales * ACS Publishing Center * Privacy Policy * Terms of Use SUPPORT & CONTACT * Help * Live Chat * FAQ CONNECT WITH ACS PUBLICATIONS * * * * * Pair your accounts. Export articles to Mendeley Get article recommendations from ACS based on references in your Mendeley library. Pair your accounts. 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