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Quarter- and half-filled quantum Hall states and their topological orders revealed by daughter states in bilayer graphene
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Even-denominator fractional quantum Hall states are promising candidates for fault-tolerant quantum computing due to their underlying non-Abelian topological orders. However, the topological order of these states remains hotly debated. Here, we report transport measurements on ultra-clean bilayer graphene heterostructures, where we observed four quarter-filled states and their corresponding Levin-Halperin daughter states, constraining their topological order. Moreover, we complete the sequence of half-filled plateaus by detecting states at v=-3/2 and v=1/2 whose daughters suggest an alternating sequence of non-Abelian orders. This pattern suggests a universal origin supporting their use in identifying topological order at even-denominator fillings, though further confirmation is needed via direct measurements. The observed quarter- and half-filled states appear in N=0 and N=1 Landau levels, respectively, and thus highlight a competition between interactions favoring paired states of either four- or two-flux composite fermions. Additionally, we observe several 'next-generation' quantum Hall states that require strong interactions between composite fermions.
Forward citations
Cited by 2 Pith papers
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Repulsive-Interaction-Driven Topological Superconductivity in a Landau Level Coupled to an $s$-Wave Superconductor
Repulsive interactions turn a half-filled Rashba-coupled Landau level proximitized by an s-wave superconductor into a topological superconductor.
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Even-denominator fractional quantum Hall states in the zeroth Landau level of ABA trilayer graphene
Even-denominator fractional quantum Hall states at 5/2 and 7/2 are observed in the zeroth Landau level of ABA trilayer graphene, appearing only near crossings of valley-split levels tuned by an electric field.
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