Flame Properties Spark Innovation

Tuesday, June 12, 2012 @ 04:06 PM gHale


A new property of flames allows for the ability to control reactions at a solid surface in a flame now opens up a whole new field of chemical innovation.

Chemists now say their previous understanding of how flames interact with a solid surface was incorrect, said researchers at the University College London (UCL). For the first time, they showed they can control a particular type of chemistry, called redox chemistry, at the surface.

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This finding has wide implications for future technology, for example in detection of chemicals in the air, and in developing our understanding of the chemistry of lightning. It also opens up the possibility of being able to perform nitrogen oxide and carbon dioxide electrolysis at the source for the management of greenhouse gases.

Results of the study show that depending on the chemical make-up of the flame, scientists can record a distinctive electrical fingerprint. The fingerprint is a consequence of the behavior of specific chemical species at the surface of a solid conducting surface, where electrons can exchange at a very precise voltage.

“Flames can be modeled to allow us to construct efficient burners and combustion engines,” said Dr. Daren Caruana, from the UCL Department of Chemistry. “But the presence of charged species or ions and electrons in flames gives them a unique electrical property.”

“By considering the gaseous flame plasma as an electrolyte, we show that it is possible to control redox reactions at the solid/gas interface,” Caruana said.

The team developed an electrode system that can probe the chemical make-up of flames. By adding chemical species to the flame they were able to pick up current signals at specific voltages giving a unique electrochemical finger print, called a voltammogram.

The voltammograms for three different metal oxides — tungsten oxide, molybdenum oxide and vanadium oxide — are all unique. Furthermore, the team also demonstrated the size of the current signatures depend on the amount of the oxide in the flame. While this is possible and routinely done in liquids, this is the first time they saw it works in the gas phase.

UCL chemists showed there are significant differences between solid/gas reactions and their liquid phase equivalents. Liquid free electrochemistry presents access to a vast number of redox reactions, current voltage signatures that lie outside potential limits defined by the liquid.

The prospect of new redox chemistries will enable new technological applications such as electrodeposition, electroanalysis and electrolysis, which will have significant economic and environmental benefits.

“The mystique surrounding the properties of fire has always captivated our imagination,” Caruana said. “However, there are still some very significant technical and scientific questions that remain regarding fire and flame.”



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