Effective field theory for fractional quantum Hall systems near ν=5/2

We propose an effective field theory (EFT) of fractional quantum Hall systems near the filling fraction ν=5/2 that flows to pertinent IR candidate phases, including non-Abelian Pfaffian, anti-Pfaffian, and particle-hole Pfaffian states (Pf, APf, and PHPf). Our EFT has a (2+1)D O(2)_{2,L} Chern-Simon...

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Bibliographic Details
Main Authors: Po-Shen Hsin, Ying-Hsuan Lin, Natalie M. Paquette, Juven Wang
Format: Article
Language:English
Published: American Physical Society 2020-11-01
Series:Physical Review Research
Online Access:http://doi.org/10.1103/PhysRevResearch.2.043242
Description
Summary:We propose an effective field theory (EFT) of fractional quantum Hall systems near the filling fraction ν=5/2 that flows to pertinent IR candidate phases, including non-Abelian Pfaffian, anti-Pfaffian, and particle-hole Pfaffian states (Pf, APf, and PHPf). Our EFT has a (2+1)D O(2)_{2,L} Chern-Simons gauge theory coupled to four Majorana fermions by a discrete charge-conjugation gauge field, with Gross-Neveu-Yukawa-Higgs terms. Including deformations via a Higgs condensate and fermion mass terms, we can map out a phase diagram with tunable parameters, reproducing the prediction of the recently proposed percolation picture and its gapless topological quantum phase transitions. Our EFT captures known features of both gapless and gapped sectors of time-reversal-breaking domain walls between Pf and APf phases. Moreover, we find that Pf∣APf domain walls have higher tension than domain walls in the PHPf phase. Then the former, if formed, may transition to the energetically favored PHPf domain walls; this could, in turn, help further induce a bulk transition to PHPf.
ISSN:2643-1564