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The role of electron-electron interactions in two-dimensional Dirac fermions

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arxiv 1808.03648 v1 pith:T2U6TSZR submitted 2018-08-10 cond-mat.str-el

classification cond-mat.str-el
keywords diracfermionsvelocitydifferentelectron-electronfermigrapheneinteractions
verification ladder T0 review T1 audit T2 compute T3 formal
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The role of electron-electron interactions on two-dimensional Dirac fermions remains enigmatic. Using a combination of nonperturbative numerical and analytical techniques that incorporate both the contact and long-range parts of the Coulomb interaction, we identify the two previously discussed regimes: a Gross-Neveu transition to a strongly correlated Mott insulator, and a semi-metallic state with a logarithmically diverging Fermi velocity accurately described by the random phase approximation. Most interestingly, experimental realizations of Dirac fermions span the crossover between these two regimes providing the physical mechanism that masks this velocity divergence. We explain several long-standing mysteries including why the observed Fermi velocity in graphene is consistently about 20 percent larger than the best values calculated using ab initio and why graphene on different substrates show different behavior.

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