Novel method distinguishing between competing topological orders
Bivas Dutta, Wenmin Yang, Ron Aharon Melcer, Hemanta Kumar Kundu, Moty, Heiblum, Vladimir Umansky, Yuval Oreg, Ady Stern, David Mross

TL;DR
This paper introduces a novel method to distinguish between competing topological orders in the quantum Hall state at filling factor 5/2 by analyzing edge modes at an engineered interface, aiding in accurate identification of the underlying quantum phase.
Contribution
The authors developed a new experimental approach to identify topological order in the ν=5/2 quantum Hall state using interface measurements of charge and neutral modes.
Findings
Detected a neutral Majorana mode indicating the particle-hole Pfaffian order.
Differentiated between the anti-Pfaffian and PH-Pf orders based on edge mode signatures.
Provided a method to clarify the topological nature of complex quantum Hall states.
Abstract
Quantum Hall states - the progenitors of the growing family of topological insulators -- are rich source of exotic quantum phases. The nature of these states is reflected in the gapless edge modes, which in turn can be classified as integer - carrying electrons, fractional - carrying fractional charges; and neutral - carrying excitations with zero net charge but a well-defined amount of heat. The latter two may obey anyonic statistics, which can be abelian or non-abelian. The most-studied putative non-abelian state is the spin-polarized filling factor {\nu}=5/2, whose charge e/4 quasiparticles are accompanied by neutral modes. This filling, however, permits different possible topological orders, which can be abelian or non-abelian. While numerical calculations favor the non-abelian anti-Pfaffian (A-Pf) order to have the lowest energy, recent thermal conductance measurements suggested…
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Taxonomy
TopicsQuantum and electron transport phenomena · Physics of Superconductivity and Magnetism · Topological Materials and Phenomena
