VOC injection into a house reveals large surface reservoir sizes in an indoor environment

J Jie Yu P Pascale S. J. Lakey (Department of Chemistry, University of California) J Jenna C. Ditto (Department of Energy, Environmental, and Chemical Engineering, Washington University in St. Louis) H Han N. Huynh (Cooperative Institute for Research in Environmental Sciences, University of Colorado) M Michael F. Link (National Institute of Standards and Technology) D Dustin Poppendieck (National Institute of Standards and Technology) S Stephen M. Zimmerman (National Institute of Standards and Technology) X Xing Wang D Delphine K. Farmer (Department of Chemistry, Colorado State University) M Marina E. Vance (Department of Mechanical Engineering, University of Colorado) J Jonathan P. D. Abbatt (Department of Chemistry, University of Toronto) M Manabu Shiraiwa (Department of Chemistry)

Abstract

The total partitioning capacity of indoor surface reservoirs determines the mechanism by which humans receive nondietary exposure to organic contaminants, via inhalation, dermal uptake, and dust ingestion. And yet, this capacity is largely unknown. Surface organic films are ubiquitously present but have very low partitioning volume being only 10’s of nanometer thick, whereas other surface reservoirs such as building materials and furnishings can be permeable or porous with large surface areas at the molecular level. Here, we assess the total partitioning capacity of volatile organic compounds (VOCs) in an indoor environment from the measured kinetics of VOC surface uptake after injection of compounds with variable volatility into a well-characterized, unoccupied test house. We show that the size of the indoor surface reservoirs is very large with an octanol-equivalent average thickness on the order of micrometers, indicating that permeable/porous materials such as painted surfaces and wood are likely the major surface reservoirs in the house rather than organic surface films. Large surface reservoirs result in compounds with octanol-air partition coefficients ( K OA ) larger than 10 5 being predominantly partitioned to indoor surface reservoirs, making them hard to be removed via ventilation. This result significantly impacts our understanding of VOC fate and human exposure in indoor environments. With such a large partitioning capacity, organic contaminants will have much longer indoor residence times than previously predicted.

Article Details

Volume / Issue Vol. 122, Issue 39
Published September 30, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

J

Jie Yu

P

Pascale S. J. Lakey

Department of Chemistry, University of California

J

Jenna C. Ditto

Department of Energy, Environmental, and Chemical Engineering, Washington University in St. Louis

H

Han N. Huynh

Cooperative Institute for Research in Environmental Sciences, University of Colorado

M

Michael F. Link

National Institute of Standards and Technology

D

Dustin Poppendieck

National Institute of Standards and Technology

S

Stephen M. Zimmerman

National Institute of Standards and Technology

X

Xing Wang

D

Delphine K. Farmer

Department of Chemistry, Colorado State University

M

Marina E. Vance

Department of Mechanical Engineering, University of Colorado

J

Jonathan P. D. Abbatt

Department of Chemistry, University of Toronto

M

Manabu Shiraiwa

Department of Chemistry