“The reaction is convenient and cheap, and hydrogenated graphene may be applied within areas such as hydrogen storage. Additionally, upon functionalization of graphene one can open a bandgap and this fact is of high relevance for electronics applications,” says Prof. Henrik Ottosson.
Graphene reacts with formic acid in a water solution upon irradiation with visible light. In the reaction, formic acid acts as masked hydrogen and a material is produced where hydrogen extensively has been added to graphene. One says that graphene has been hydrogenated. Yet, graphene research is a side-project in Henrik Ottosson’s group. The group normally studies the behaviours of various aromatic hydrocarbons upon irradiation, and they apply Baird’s rule, which can be derived through chemically applied quantum mechanics.
Chemical compounds that are aromatic have an inherently high stability and often they are not easy to degrade. Benzene is the most well known aromatic compound and more than half of all known chemical compounds contain aromatic groups. The high stability of aromatic compounds is explained by Hückel´s “4n+2” rule, but this rule is only valid for compounds in their electronic ground states. Upon exposure to light of a certain wavelength, the aromatic compounds reach electronically excited states.
Compounds that are aromatic in the ground state become antiaromatic and reactive in theexcited state. The rule, neglected for decades, can now be used to describe various behaviours of aromatic compounds when rradiated. Using Baird’s rule, Henrik Ottosson’s group develops new light-initiated reactions. First, they studied addition of hydrosilanes to benzenes, naphthalene and gradually larger polycyclic aromatic hydrocarbons (hydrosilanes are compounds that can be regarded as heavy analogues of hydrogen).
Despite the fact that it is not possible to explain if, and how, Baird’s rule can be applied to graphene (an essentially infinitely large polycyclic aromatic hydrocarbon), the group explored graphene chemistry and found a very efficient addition reaction when using formic acid.
“The recent progress we have seen in photochemistry, highlighted by the results herein, will increase our opportunities to access chemistry that no one thought possible a few years ago. In addition, graphene based materials have exceptional inherent properties. There is a wealth of possible applications that could result in the next biomedical revolution” , says Joakim Bergman, Innovative Medicines and Early Development Biotech Unit AstraZeneca Gothenburg. http://www.uu.se/en/media/news/article/?id=7334&area=2,5,10,16&typ=artikel&lang=en
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