The interlayer binding energy of graphite is obtained by a semiempirical method in which ab initio calculations based on the density functional theory (DFT) are supplemented with an empirical van der Waals (vdW) interaction. The local density approximation (LDA) and generalized gradient approximation (GGA) are used in the DFT calculations, and the damping (or interpolation) function used to combine these DFT results with an empirical vdW interaction is fitted to the observed interlayer spacing and c-axis elastic constant. The interlayer binding energies calculated in the LDA and GGA are quite different, but the combined results are nearly the same, which may be a necessary condition and provide reinforcements for validating the method. The ...
We investigated the nature of the cohesive energy between graphane sheets via multiple CH center dot...
The interaction between a water–ice bilayer and graphite is investigated by means of standard and va...
We report diffusion quantum Monte Carlo calculations of the interlayer binding energy of bilayer gra...
The interlayer binding energy of graphite is obtained by a semiempirical method in which ab initio c...
We have developed a semiempirical method to obtain interlayer binding energy of graphite in the prev...
We computed the inter-layer bonding properties of graphite using an ab-initio many body theory. We c...
International audienceWe combine high-level theoretical and ab initio understanding of graphite to d...
International audienceVia a novel experiment, Liu et al. [Phys. Rev. B 85, 205418 (2012)] estimated ...
Despite the interlayer binding energy being one of the most important material properties of graphit...
Abstract The structural and electronic properties of bulk graphite were compared using density funct...
In this communication, we present results of theoretical studies of various systems where Van der Wa...
We report diffusion quantum Monte Carlo calculations of the interlayer binding energy of bilayer gra...
A model of a graphite crystal is used which consists of a set of parallel slabs of positive charge i...
We investigated the nature of the cohesive energy between graphane sheets via multiple CH···HC inter...
The weak interplanar bonding in graphite is studied in the DFT formalism. The decomposition of the ...
We investigated the nature of the cohesive energy between graphane sheets via multiple CH center dot...
The interaction between a water–ice bilayer and graphite is investigated by means of standard and va...
We report diffusion quantum Monte Carlo calculations of the interlayer binding energy of bilayer gra...
The interlayer binding energy of graphite is obtained by a semiempirical method in which ab initio c...
We have developed a semiempirical method to obtain interlayer binding energy of graphite in the prev...
We computed the inter-layer bonding properties of graphite using an ab-initio many body theory. We c...
International audienceWe combine high-level theoretical and ab initio understanding of graphite to d...
International audienceVia a novel experiment, Liu et al. [Phys. Rev. B 85, 205418 (2012)] estimated ...
Despite the interlayer binding energy being one of the most important material properties of graphit...
Abstract The structural and electronic properties of bulk graphite were compared using density funct...
In this communication, we present results of theoretical studies of various systems where Van der Wa...
We report diffusion quantum Monte Carlo calculations of the interlayer binding energy of bilayer gra...
A model of a graphite crystal is used which consists of a set of parallel slabs of positive charge i...
We investigated the nature of the cohesive energy between graphane sheets via multiple CH···HC inter...
The weak interplanar bonding in graphite is studied in the DFT formalism. The decomposition of the ...
We investigated the nature of the cohesive energy between graphane sheets via multiple CH center dot...
The interaction between a water–ice bilayer and graphite is investigated by means of standard and va...
We report diffusion quantum Monte Carlo calculations of the interlayer binding energy of bilayer gra...