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research article

Enhanced sonochemical degradation of bisphenol-A by bicarbonate ions

Pétrier, C.
•
Torres-Palma, R.
•
Combet, E.
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2010
Ultrasonic Sonochemistry

Sonochemical elimination of organic pollutants can take place through two degradation pathways. Molecules with relatively large Henry’s law constants will be incinerated inside the cavitation bubble, while nonvolatile molecules with low Henry’s law constants will be oxidised by the OHradical dot ejected from the bubble of cavitation. Taking bisphenol-A as a model pollutant, this study points out an alternate degradation route, mediated by bicarbonate ions, which is significant for the elimination of micro-pollutants at concentrations present in natural waters. In this process, OHradical dot radicals react with bicarbonate ions to produce the carbonate radical, which, unlike the OHradical dot radical, can migrate towards the bulk of the solution and therefore induce the degradation of the micro-pollutants present in the bulk solution. As a consequence, initial degradation rate is increased by a factor 3.2 at low concentration of bisphenol-A (0.022 μmol l−1) in presence of bicarbonate in water.

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Type
research article
DOI
10.1016/j.ultsonch.2009.05.010
Web of Science ID

WOS:000273930300023

Author(s)
Pétrier, C.
Torres-Palma, R.
Combet, E.
Sarantakos, G.
Baup, S.
Pulgarin, C.  
Date Issued

2010

Published in
Ultrasonic Sonochemistry
Volume

17

Issue

1

Start page

111

End page

115

Subjects

Endocrine disrupting chemical

•

Bisphenol-A

•

Sonochemical degradation

•

Bicarbonate ion

•

Advanced oxidation processes

•

Carbonate radical

•

Aqueous-Solution

•

Carbonate Radicals

•

Natural-Waters

•

Rate Constants

•

Waste-Water

•

Cavitation

•

Destruction

•

Environment

•

Ultrasound

•

Reactivity

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GPAO  
Available on Infoscience
August 20, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/42155
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