A. C. Aiken✉(Cooperative Institute for Research in Environmental Sciences)P. F. DeCarlo(Cooperative Institute for Research in Environmental Sciences)Jesse H. Kroll(Cooperative Institute for Research in Environmental Sciences)Douglas R. Worsnop(Cooperative Institute for Research in Environmental Sciences)J. A. Huffman(Cooperative Institute for Research in Environmental Sciences)Kenneth S. Docherty(Cooperative Institute for Research in Environmental Sciences)I. M. Ulbrich(Cooperative Institute for Research in Environmental Sciences)Claudia Mohr(Cooperative Institute for Research in Environmental Sciences)Joel R. Kimmel(Cooperative Institute for Research in Environmental Sciences)D. Sueper(Cooperative Institute for Research in Environmental Sciences)Yele Sun(Cooperative Institute for Research in Environmental Sciences)Qi Zhang(Cooperative Institute for Research in Environmental Sciences)A. Trimborn(Cooperative Institute for Research in Environmental Sciences)M. J. Northway(Cooperative Institute for Research in Environmental Sciences)Paul J. Ziemann(Cooperative Institute for Research in Environmental Sciences)Manjula R. Canagaratna(Cooperative Institute for Research in Environmental Sciences)T. B. Onasch(Cooperative Institute for Research in Environmental Sciences)M. Rami Alfarra(Cooperative Institute for Research in Environmental Sciences)Andrê S. H. Prévôt(Cooperative Institute for Research in Environmental Sciences)Josef Dommen(Cooperative Institute for Research in Environmental Sciences)Jonathan Duplissy(Cooperative Institute for Research in Environmental Sciences)Axel Metzger(Cooperative Institute for Research in Environmental Sciences)Urs Baltensperger(Cooperative Institute for Research in Environmental Sciences)J. L. Jiménez(Cooperative Institute for Research in Environmental Sciences)
A recently developed method to rapidly quantify the elemental composition of bulk organic aerosols (OA) using a high-resolution time-of-flight aerosol mass spectrometer (HR-ToF-AMS) is improved and applied to ambient measurements. Atomic oxygen-to-carbon (O/C) ratios characterize the oxidation state of OA, and O/C from ambient urban OA ranges from 0.2 to 0.8 with a diurnal cycle that decreases with primary emissions and increases because of photochemical processing and secondary OA (SOA) production. Regional O/C approaches approximately 0.9. The hydrogen-to-carbon (H/C, 1.4--1.9) urban diurnal profile increases with primary OA (POA) as does the nitrogen-to-carbon (N/C, approximately 0.02). Ambient organic-mass-to-organic-carbon ratios (OM/OC) are directly quantified and correlate well with O/C (R2 = 0.997) for ambient OA because of low N/C. Ambient O/C and OM/OC have values consistent with those recently reported from other techniques. Positive matrix factorization applied to ambient OA identifies factors with distinct O/C and OM/OC trends. The highest O/C and OM/OC (1.0 and 2.5, respectively) are observed for aged ambient oxygenated OA, significantly exceeding values for traditional chamber SOA,while laboratory-produced primary biomass burning OA (BBOA) is similar to ambient BBOA, O/C of 0.3--0.4. Hydrocarbon-like OA (HOA), a surrogate for urban combustion POA, has the lowest O/C (0.06--0.10), similar to vehicle exhaust. An approximation for predicting O/C from unit mass resolution data is also presented.