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Long-range ballistic transport of Brown-Zak fermions in graphene superlattices

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arxiv 2006.15040 v2 pith:XSERUBKI submitted 2020-06-26 cond-mat.mes-hall

Long-range ballistic transport of Brown-Zak fermions in graphene superlattices

classification cond-mat.mes-hall
keywords brown-zakfermionssuperlatticesexhibitfieldsfractionsgraphenemagnetic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In quantizing magnetic fields, graphene superlattices exhibit a complex fractal spectrum often referred to as the Hofstadter butterfly. It can be viewed as a collection of Landau levels that arise from quantization of Brown-Zak minibands recurring at rational ($p/q$) fractions of the magnetic flux quantum per superlattice unit cell. Here we show that, in graphene-on-boron-nitride superlattices, Brown-Zak fermions can exhibit mobilities above 10$^6$ cm$^2$V$^{-1}$s$^{-1}$ and the mean free path exceeding several micrometers. The exceptional quality of our devices allows us to show that Brown-Zak minibands are $4q$ times degenerate and all the degeneracies (spin, valley and mini-valley) can be lifted by exchange interactions below 1K. We also found negative bend resistance at $1/q$ fractions for electrical probes placed as far as several micrometers apart. The latter observation highlights the fact that Brown-Zak fermions are Bloch quasiparticles propagating in high fields along straight trajectories, just like electrons in zero field.

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