Atomistic simulations of graphite etching at realistic time scales† †Electronic supplementary information (ESI) available. See DOI: 10.1039/c7sc02763j Click here for additional data file.

نویسندگان

  • D U B Aussems
  • K M Bal
  • T W Morgan
  • M C M van de Sanden
  • E C Neyts
چکیده

Hydrogen-graphite interactions are relevant to a wide variety of applications, ranging from astrophysics to fusion devices and nano-electronics. In order to shed light on these interactions, atomistic simulation using Molecular Dynamics (MD) has been shown to be an invaluable tool. It suffers, however, from severe time-scale limitations. In this work we apply the recently developed Collective Variable-Driven Hyperdynamics (CVHD) method to hydrogen etching of graphite for varying inter-impact times up to a realistic value of 1 ms, which corresponds to a flux of ∼1020 m-2 s-1. The results show that the erosion yield, hydrogen surface coverage and species distribution are significantly affected by the time between impacts. This can be explained by the higher probability of C-C bond breaking due to the prolonged exposure to thermal stress and the subsequent transition from ion- to thermal-induced etching. This latter regime of thermal-induced etching - chemical erosion - is here accessed for the first time using atomistic simulations. In conclusion, this study demonstrates that accounting for long time-scales significantly affects ion bombardment simulations and should not be neglected in a wide range of conditions, in contrast to what is typically assumed.

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منابع مشابه

Small endohedral metallofullerenes: exploration of the structure and growth mechanism in the Ti@C2n (2n = 26–50) family† †Electronic supplementary information (ESI) available: additional figures of energy profiles, detailed information about the Car–Parrinello simulations (including two movies) and optimized geometries for the most representative structures. See DOI: 10.1039/c4sc02268h Click here for additional data file. Click here for additional data file. Click here for additional data file.

Departament de Qúımica F́ısica i Inorgàn Domingo s/n, 43007 Tarragona, Spain [email protected] Department of Chemistry and Biochemistr Florida 32306, USA. E-mail: [email protected] † Electronic supplementary information energy proles, detailed information a (including two movies) and optimized g structures. See DOI: 10.1039/c4sc02268h ‡ M.M.-G. and L.A. contributed equally to Cite this: Che...

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عنوان ژورنال:

دوره 8  شماره 

صفحات  -

تاریخ انتشار 2017