| Literature DB >> 31023921 |
Hongyan Jiang1,2, Marvin Kammler1,2, Feizhi Ding3, Yvonne Dorenkamp1,2, Frederick R Manby4, Alec M Wodtke5,2,6, Thomas F Miller7, Alexander Kandratsenka8, Oliver Bünermann5,6.
Abstract
Viewing the atomic-scale motion and energy dissipation pathways involved in forming a covalent bond is a longstanding challenge for chemistry. We performed scattering experiments of H atoms from graphene and observed a bimodal translational energy loss distribution. Using accurate first-principles dynamics simulations, we show that the quasi-elastic channel involves scattering through the physisorption well where collision sites are near the centers of the six-membered C-rings. The second channel results from transient C-H bond formation, where H atoms lose 1 to 2 electron volts of energy within a 10-femtosecond interaction time. This remarkably rapid form of intramolecular vibrational relaxation results from the C atom's rehybridization during bond formation and is responsible for an unexpectedly high sticking probability of H on graphene.Entities:
Year: 2019 PMID: 31023921 DOI: 10.1126/science.aaw6378
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728