Skip to content
Research Article Open access CC BY 3.0

Hysteretic Desorption of Perfluorooctane Sulphonates within Sediment Components under Aerobic and Anoxic Conditions

I. A. Ololade

International Research Journal of Pure and Applied Chemistry · pp. 773–784 · Published 20 Jul 2014

10.9734/IRJPAC/2014/10592

Abstract

The fate of organic contaminants in sediment can be better accurately predicted through knowledge of desorption. Complex formation between perflurooctane sulphonates (PFOS) and active sites on sediment components, especially, the level of organic matter plays significant role in desorption process. Assessment of successive desorption steps shows that the percent of expected desorption at constant distribution coefficient is better described by ideal and linear model. Desorption of PFOS from the various component at varied organic carbon contents was observed to follow a linear isotherm. Significant negative correlation (R2=0.934) was observed between fractional desorption of PFOS and percent organic carbon content of each sediment component. The study observed that significant percentage of initially desorbed PFOS is readily available to partition into the porewater as freely dissolved PFOS. Our findings suggest the stimulation of iron (III) reduction for the bioremediation of subsurface environments contaminated with redox active contaminants such as PFOS.  

Perflurooctane sulphonates desorption anaerobic reduction organic matter sediment

Cited by 3

The Case for Direct Measures of Soil-to-Groundwater Contaminant Mass Discharge at AFFF-Impacted Sites

Richard H. Anderson · Environmental Science & Technology · 2021

Article metrics

Real usage data collected on this platform.

0

Page views

0

PDF downloads

0

Outbound clicks

3

Citations

Views by country

Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".

No views recorded yet.

Traffic sources

Referring site, by host.

No traffic recorded yet.

Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.