REFERENCES

1. Wania F, Shunthirasingham C. Passive air sampling for semi-volatile organic chemicals. Environ Sci Process Impacts 2020;22:1925-2002.

2. Li Y, Armitage JM, Wania F. Graphical tools for the planning and interpretation of polyurethane foam based passive air sampling campaigns. Environ Sci Process Impacts 2022;24:414-25.

3. Bartkow ME, Booij K, Kennedy KE, Müller JF, Hawker DW. Passive air sampling theory for semivolatile organic compounds. Chemosphere 2005;60:170-6.

4. Salim F, Górecki T. Theory and modelling approaches to passive sampling. Environ Sci Process Impacts 2019;21:1618-41.

5. Harner T. PUF/SIP disk effective air volume calculation for target chemicals.

6. Herkert NJ, Martinez A, Hornbuckle KC. A model using local weather data to determine the effective sampling volume for pcb congeners collected on passive air samplers. Environ Sci Technol 2016;50:6690-7.

7. Herkert NJ, Spak SN, Smith A, et al. Calibration and evaluation of PUF-PAS sampling rates across the Global Atmospheric Passive Sampling (GAPS) network. Environ Sci Process Impacts 2018;20:210-9.

8. Melymuk L, Nizzetto PB, Harner T, et al. Global intercomparison of polyurethane foam passive air samplers evaluating sources of variability in SVOC measurements. Environ Sci Policy 2021;125:1-9.

9. Melymuk L, Bohlin P, Sáňka O, Pozo K, Klánová J. Current challenges in air sampling of semivolatile organic contaminants: sampling artifacts and their influence on data comparability. Environ Sci Technol 2014;48:14077-91.

10. Melymuk L, Bohlin-Nizzetto P, Prokeš R, Kukučka P, Klánová J. Sampling artifacts in active air sampling of semivolatile organic contaminants: Comparing theoretical and measured artifacts and evaluating implications for monitoring networks. Environ Pollut 2016;217:97-106.

11. Melymuk L, Bohlin-nizzetto P, Prokeš R, et al. Uncertainties in monitoring of SVOCs in air caused by within-sampler degradation during active and passive air sampling. Atmos Environ 2017;167:553-65.

12. Chaemfa C, Wild E, Davison B, Barber JL, Jones KC. A study of aerosol entrapment and the influence of wind speed, chamber design and foam density on polyurethane foam passive air samplers used for persistent organic pollutants. J Environ Monit 2009;11:1135-9.

13. Venier M, Audy O, Vojta Š, et al. Brominated flame retardants in the indoor environment - Comparative study of indoor contamination from three countries. Environ Int 2016;94:150-60.

14. Vykoukalová M, Venier M, Vojta Š, et al. Organophosphate esters flame retardants in the indoor environment. Environ Int 2017;106:97-104.

15. Marek RF, Thorne PS, Herkert NJ, Awad AM, Hornbuckle KC. Airborne PCBs and OH-PCBs Inside and outside urban and rural U.S. schools. Environ Sci Technol 2017;51:7853-60.

16. Abdallah MA, Harrad S. Modification and calibration of a passive air sampler for monitoring vapor and particulate phase brominated flame retardants in indoor air: application to car interiors. Environ Sci Technol 2010;44:3059-65.

17. Strandberg B, Österman C, Koca Akdeva H, Moldanová J, Langer S. The use of polyurethane foam (PUF) passive air samplers in exposure studies to PAHs in Swedish seafarers. Polycycl Aromat Comp 2022;42:448-59.

18. Persoon C, Hornbuckle KC. Calculation of passive sampling rates from both native PCBs and depuration compounds in indoor and outdoor environments. Chemosphere 2009;74:917-23.

19. Melymuk L, Bohlin-Nizzetto P, Kukučka P, et al. Seasonality and indoor/outdoor relationships of flame retardants and PCBs in residential air. Environ Pollut 2016;218:392-401.

20. Harrad S, Hazrati S, Ibarra C. Concentrations of polychlorinated biphenyls in indoor air and polybrominated diphenyl ethers in indoor air and dust in Birmingham, United Kingdom: implications for human exposure. Environ Sci Technol 2006;40:4633-8.

21. Saini A, Okeme JO, Goosey E, Diamond ML. Calibration of two passive air samplers for monitoring phthalates and brominated flame-retardants in indoor air. Chemosphere 2015;137:166-73.

22. Hazrati S, Harrad S. Calibration of polyurethane foam (PUF) disk passive air samplers for quantitative measurement of polychlorinated biphenyls (PCBs) and polybrominated diphenyl ethers (PBDEs): factors influencing sampling rates. Chemosphere 2007;67:448-55.

23. Harrad S, Abdallah MA. Calibration of two passive air sampler configurations for monitoring concentrations of hexabromocyclododecanes in indoor air. J Environ Monit 2008;10:527-31.

24. Bohlin P, Audy O, Škrdlíková L, et al. Evaluation and guidelines for using polyurethane foam (PUF) passive air samplers in double-dome chambers to assess semi-volatile organic compounds (SVOCs) in non-industrial indoor environments. Environ Sci Process Impacts 2014;16:2617-26.

25. Okeme JO, Yang C, Abdollahi A, et al. Passive air sampling of flame retardants and plasticizers in Canadian homes using PDMS, XAD-coated PDMS and PUF samplers. Environ Pollut 2018;239:109-17.

26. Demirtepe H, Melymuk L, Diamond ML, et al. Linking past uses of legacy SVOCs with today's indoor levels and human exposure. Environ Int 2019;127:653-63.

27. Wilford BH, Harner T, Zhu J, Shoeib M, Jones KC. Passive sampling survey of polybrominated diphenyl ether flame retardants in indoor and outdoor air in Ottawa, Canada: implications for sources and exposure. Environ Sci Technol 2004;38:5312-8.

28. Bohlin P, Jones KC, Strandberg B. Field evaluation of polyurethane foam passive air samplers to assess airborne PAHs in occupational environments. Environ Sci Technol 2010;44:749-54.

29. Strandberg B, Julander A, Sjöström M, Lewné M, Koca Akdeva H, Bigert C. Evaluation of polyurethane foam passive air sampler (PUF) as a tool for occupational PAH measurements. Chemosphere 2018;190:35-42.

30. Tao S, Liu Y, Xu W, et al. Calibration of a passive sampler for both gaseous and particulate phase polycyclic aromatic hydrocarbons. Environ Sci Technol 2007;41:568-73.

31. Meng Z, Wang L, Cao B, Huang Z, Liu F, Zhang J. Indoor airborne phthalates in university campuses and exposure assessment. Build and Enviro 2020;180:107002.

32. Bohlin P, Audy O, Škrdlíková L, et al. Outdoor passive air monitoring of semi volatile organic compounds (SVOCs): a critical evaluation of performance and limitations of polyurethane foam (PUF) disks. Environ Sci Process Impacts 2014;16:433-44.

33. Audy O, Melymuk L, Venier M, et al. PCBs and organochlorine pesticides in indoor environments - a comparison of indoor contamination in Canada and Czech Republic. Chemosphere 2018;206:622-31.

34. Antweiler RC. Evaluation of statistical treatments of left-censored environmental data using coincident uncensored data sets. II. group comparisons. Environ Sci Technol 2015;49:13439-46.

35. Melymuk L, Diamond ML, Riddell N, Wan Y, Vojta Š, Chittim B. Challenges in the analysis of novel flame retardants in indoor dust: results of the INTERFLAB 2 interlaboratory evaluation. Environ Sci Technol 2018;52:9295-303.

36. Tran DT, Alleman LY, Coddeville P, Galloo J. Indoor-utdoor behavior and sources of size-resolved airborne particles in French classrooms. Build and Environ 2014;81:183-91.

37. Xu H, Guinot B, Niu X, et al. Concentrations, particle-size distributions, and indoor/outdoor differences of polycyclic aromatic hydrocarbons (PAHs) in a middle school classroom in Xi'an, China. Environ Geochem Health 2015;37:861-73.

38. Markovic MZ, Prokop S, Staebler RM, Liggio J, Harner T. Evaluation of the particle infiltration efficiency of three passive samplers and the PS-1 active air sampler. Atmos Environ 2015;112:289-93.

39. Melymuk L, Bohlin-Nizzetto P, Vojta Š, et al. Distribution of legacy and emerging semivolatile organic compounds in five indoor matrices in a residential environment. Chemosphere 2016;153:179-86.

40. Cequier E, Ionas AC, Covaci A, Marcé RM, Becher G, Thomsen C. Occurrence of a broad range of legacy and emerging flame retardants in indoor environments in Norway. Environ Sci Technol 2014;48:6827-35.

41. Herkert NJ, Hornbuckle KC. Effects of room airflow on accurate determination of PUF-PAS sampling rates in the indoor environment. Environ Sci Process Impacts 2018;20:757-66.

42. Shoeib M, Harner T, Lee SC, Lane D, Zhu J. Sorbent-impregnated polyurethane foam disk for passive air sampling of volatile fluorinated chemicals. Anal Chem 2008;80:675-82.

43. Ahrens L, Harner T, Shoeib M, Koblizkova M, Reiner EJ. Characterization of two passive air samplers for per- and polyfluoroalkyl substances. Environ Sci Technol 2013;47:14024-33.

44. Papazian S, Fornaroli C, Bonnefille B, Pesquet E, Xie H, Martin JW. Silicone foam for passive sampling and nontarget analysis of air. Environ Sci Technol Lett 2023;10:989-97.

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All published articles are preserved here permanently:

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