Reactive oxygen species and chromophoric dissolved organic matter drive the aquatic photochemical pathways and photoproducts of 6PPD-Quinone under simulated high-latitude conditions

01 November 2023, Version 2
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

The photochemical degradation pathways of 6PPD-quinone (6PPDQ, 6PPD-Q), a toxic transformation product of the tire antiozonant 6PPD, were determined under simulated sunlight conditions typical of high-latitude surface waters. Direct photochemical degradation resulted in 6PPDQ half-lives ranging from 17.5 h at 20 °C to no observable degradation over 48 h at 4 °C. Sensitization of excited triplet state pathways using Cs+ and Ar purging demonstrated that 6PPDQ does not decompose significantly from a triplet state relative to a singlet state. However, assessment of processes involving reactive oxygen species (ROS) quenchers and sensitizers indicated that singlet oxygen and hydroxyl radical do significantly contribute to the degradation of 6PPDQ. Investigation of these processes in natural lake waters indicated no difference in attenuation rates for direct photochemical processes at 20 °C. This suggests that direct photochemical degradation will dominate in warm waters while indirect photochemical pathways will dominate in cold waters, involving ROS mediated by chromophoric dissolved organic matter (CDOM). Overall, the aquatic photodegradation rate of 6PPDQ will be strongly influenced by the compounding effects of environmental factors such as light screening and temperature on both direct and indirect photochemical processes. Transformation products were identified via UHPLC-Orbitrap mass spectrometry, revealing four major processes: 1) oxidation and cleavage of the quinone ring in the presence of ROS, 2) dealkylation, 3) rearrangement, and 4) deamination. These data indicate that 6PPDQ can photodegrade in cool, sunlit waters under the appropriate conditions: t1/2 = 17.4 h – no observable decrease (direct); t1/2 = 5.2 – 11.2 h (indirect, CDOM)

Keywords

Reactive Oxygen Species
Singlet Oxygen
Hydroxyl Radical
Photolysis
Photochemistry
Transformation Products

Supplementary materials

Title
Description
Actions
Title
Supporting Information for Reactive oxygen species and chromophoric dissolved organic matter drive the aquatic photochemical pathways and photoproducts of 6PPD-Quinone under simulated high-latitude conditions
Description
HPLC-DAD molar absorptivity validation. 2NB actinometry flux mapping. Description of LC-MS/MS quantitative analysis and acquisition parameters. Description of solid phase extraction and UHPLC-Orbitrap non-target analysis. Tabulated molar absorptivity of 6PPDQ. Tabulated rate constants for the degradation of 6PPDQ in experimental treatments. Solution absorbance and light screening factors for lake water and SRFA solutions. Tabulated 6PDDQ transformation products identified via UHPLC-Orbitrap.
Actions

Comments

Comments are not moderated before they are posted, but they can be removed by the site moderators if they are found to be in contravention of our Commenting Policy [opens in a new tab] - please read this policy before you post. Comments should be used for scholarly discussion of the content in question. You can find more information about how to use the commenting feature here [opens in a new tab] .
This site is protected by reCAPTCHA and the Google Privacy Policy [opens in a new tab] and Terms of Service [opens in a new tab] apply.