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Oxford chemists unlock Appel fluorination with KF

07.30.26 | University of Oxford
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Alcohols are among the most abundant building blocks in chemistry. Fluorinated compounds, meanwhile, are essential for many modern medicines, crop protection products and advanced materials. Converting one into the other, however, has traditionally relied on toxic, thermally unstable reagents such as DAST (diethylaminosulfur trifluoride) that make large-scale manufacturing operationally demanding.

Researchers are therefore seeking safer and more practical ways to carry out these fluorination reactions. One major goal is to use simple, inexpensive and widely available fluoride sources such as potassium fluoride in order to make the process safer, more scalable and more sustainable.

Now, a University of Oxford team led by Professor Véronique Gouverneur (Department of Chemistry) has revisited the classic Appel reaction, a widely used method for converting alcohols into alkyl halides – molecules containing a carbon–halogen bond. This landmark method is currently limited to converting alcohols into all alkyl halides except for fluorides . The reason for this is that fluoride ions form a stable side product (PPh 3 F 2 ) instead of reacting with the alcohol to produce the desired fluorinated compound.

Researchers at Oxford have now invented a neopentoxyphosphonium salt that avoids the formation of the unwanted side product PPh 3 F 2 . This novel salt works with potassium fluoride to form a reactive intermediate capable of activating the alcohol substrate for subsequent fluorination.

Using this strategy, the team synthesised more than 80 fluorinated molecules, including a range of (hetero)cyclic and bio-relevant alkyl fluorides, with yields of up to 98%. They were also able to generate enantioenriched fluorochemicals from readily available racemic starting alcohols –a particularly difficult transformation because conventional fluorinating methods require starting materials that are already enantioenriched.

Importantly, this new technology does not rely on the supply chain of hazardous chemical hydrogen fluoride (HF), which is currently used in almost all fluorination chemistry. The fluoride-containing chemicals that are necessary for synthesising the team’s novel reagent can themselves be directly prepared from the widely abundant mineral fluorspar. Such technology was developed previously by Professor Gouverneur and her team, in Oxford: Fluorspar to fluorochemicals upon low-temperature activation in water. Nature 635 , 359–364 (2024) .

Both the catalyst and the phosphine oxide by-product can be recovered and recycled after the fluorination reaction, minimising waste and therefore incorporating key principles of circular chemistry that improve the sustainability of the process.

This novel potassium fluoride-based Appel fluorination could help pave the way toward a simpler, safer, and more sustainable circular fluorine economy.

Notes to editors:

For media enquires and interview requests, contact Professor Veronique Gouverneur veronique.gouverneur@chem.ox.ac.uk

The study ‘Catalytic Appel fluorination of alcohols with potassium fluoride’ will be published by Science at 19:00 BST / 14:00 ET Thursday 30 July 2026, DOI: 10.1126/science.aec6298 Advance copies of the paper may be obtained from the Science press package, SciPak, at https://www.eurekalert.org/press/scipak/ or by contacting scipak@aaas.org

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Science

10.1126/science.aec6298

Catalytic Appel fluorination of alcohols with potassium fluoride

30-Jul-2026

Keywords

Article Information

Contact Information

Caroline Wood
University of Oxford
caroline.wood@admin.ox.ac.uk

How to Cite This Article

APA:
University of Oxford. (2026, July 30). Oxford chemists unlock Appel fluorination with KF. Brightsurf News. https://www.brightsurf.com/news/1GR69DW8/oxford-chemists-unlock-appel-fluorination-with-kf.html
MLA:
"Oxford chemists unlock Appel fluorination with KF." Brightsurf News, Jul. 30 2026, https://www.brightsurf.com/news/1GR69DW8/oxford-chemists-unlock-appel-fluorination-with-kf.html.