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
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.
منابع مشابه
High temperature ferromagnetism in π-conjugated two-dimensional metal–organic frameworks† †Electronic supplementary information (ESI) available: (1) Computational methods; (2) electronic band structures of NiMPc MOF monolayers (Fig. S1); (3) calculation results for NiMnPc MOF monolayers with NiO4 and NiS4 moieties (Fig. S2); (4) ferromagnetic transition temperatures of 2D Heisenberg model with single-ion anisotropy (Fig. S3); (5) structure and energetics of bulk NiMnPc (Fig. S4 and S5); (6) atomistic coordinate data of NiMPc MOF monolayers. See DOI: 10.1039/c6sc05080h Click here for additional data file. Click here for additional data file. Click here for additional data file. Click here for additional data file. Click here for additional data file. Click here for additional data file. Click here for additional data file.
Research Laboratory of Electronics, M Cambridge, Massachusetts 02139, USA Department of Chemistry, Massachusett Massachusetts 02139, USA. E-mail: mdinca@ Department of Nuclear Science and Enginee Engineering, Massachusetts Institute of Tech USA. E-mail: [email protected] Department of Physics, Massachusetts Massachusetts 02139, USA † Electronic supplementary information methods; (2) electronic band ...
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عنوان ژورنال:
دوره 8 شماره
صفحات -
تاریخ انتشار 2017