Graphene Versus MoS2: a Short Review
arXiv:1408.0437 · doi:10.1007/s11467-015-0459-z
Abstract
Graphene and MoS2 are two well-known quasi two-dimensional materials. This review is a comparative survey of the complementary lattice dynamical and mechanical properties of graphene and MoS2. This comparison facilitates the study of graphene/MoS2 heterostructures, which is expected to mitigate the negative properties of each individual constituent.
Frontiers of Physics, published, Focus Review
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Cited by in corpus (5)
- Cross-plane enhanced thermoelectricity and phonon suppression in graphene/MoS2 van der Waals heterostructures
- Mass inversion in graphene by proximity to dichalcogenide monolayer
- Strong-coupling superconductivity induced by calcium intercalation in bilayer transition-metal dichalcogenides
- Transport features of topological corner states in honeycomb lattice with multihollow structure
- Large enhancement of infrared absorption due to trimer comprised of doping-N and S-S divacancies in the imperfect monolayer MoS2: A first-principles study