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Zero-field composite Fermi liquid in twisted semiconductor bilayers
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abstract
Recent experiments have produced evidence for fractional quantum anomalous Hall (FQAH) states at zero magnetic field in the semiconductor moir\'e superlattice system $t$MoTe$_2$. Here we argue that a composite fermion description, already a unifying framework for the phenomenology of 2d electron gases at high magnetic fields, provides a similarly powerful perspective in this new context. To this end, we present exact diagonalization evidence for composite Fermi liquid states at zero magnetic field in $t$MoTe$_2$ at fillings $n=\frac{1}{2}$ and $n=\frac{3}{4}$. We dub these non-Fermi liquid metals anomalous composite Fermi liquids (ACFLs), and we argue that they play a central organizing role in the FQAH phase diagram. We proceed to develop a long wavelength theory for this ACFL state that offers concrete experimental predictions upon doping the composite Fermi sea, including a Jain sequence of FQAH states and a new type of commensurability oscillations originating from the superlattice potential intrinsic to the system.
Forward citations
Cited by 2 Pith papers
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Lattice composite Fermi liquid with broken inversion symmetry
Inversion-asymmetric lattice composite Fermi liquids show singular optical resistivity ∼|ω|^{4/3}, nonreciprocal finite-q Hall response, and enhanced Umklapp DC resistivity absent in continuum CFLs.
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Anyon delocalization transitions out of a disordered FQAH insulator
A theory predicts that doping a ν=2/3 fractional quantum anomalous Hall insulator with charge-2/3 anyons can drive a direct transition to a chiral topological superconductor, with a universal resistance peak, while ch...
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