Department of Physics, University of California, Santa Barbara, California 93106, USA.
California Nanosystems Institute, University of California at Santa Barbara, Santa Barbara, California 93106, USA.
Nature. 2017 Sep 20;549(7672):360-364. doi: 10.1038/nature23893.
Non-Abelian anyons are a type of quasiparticle with the potential to encode quantum information in topological qubits protected from decoherence. Experimental systems that are predicted to harbour non-Abelian anyons include p-wave superfluids, superconducting systems with strong spin-orbit coupling, and paired states of interacting composite fermions that emerge at even denominators in the fractional quantum Hall (FQH) regime. Although even-denominator FQH states have been observed in several two-dimensional systems, small energy gaps and limited tunability have stymied definitive experimental probes of their non-Abelian nature. Here we report the observation of robust even-denominator FQH phases at half-integer Landau-level filling in van der Waals heterostructures consisting of dual-gated, hexagonal-boron-nitride-encapsulated bilayer graphene. The measured energy gap is three times larger than observed previously. We compare these FQH phases with numerical and theoretical models while simultaneously controlling the carrier density, layer polarization and magnetic field, and find evidence for the paired Pfaffian phase that is predicted to host non-Abelian anyons. Electric-field-controlled level crossings between states with different Landau-level indices reveal a cascade of FQH phase transitions, including a continuous phase transition between the even-denominator FQH state and a compressible composite fermion liquid. Our results establish graphene as a pristine and tunable experimental platform for studying the interplay between topology and quantum criticality, and for detecting non-Abelian qubits.
非阿贝尔任意子是一种准粒子,具有将拓扑量子比特编码为量子信息的潜力,这些量子比特受到保护,不会受到退相干的影响。预测存在非阿贝尔任意子的实验系统包括 p 波超流体、具有强自旋轨道耦合的超导系统,以及在分数量子霍尔(FQH)区偶数分数出现的相互作用复合费米子的配对态。尽管在几个二维系统中已经观察到了偶数分数的 FQH 态,但较小的能隙和有限的可调谐性阻碍了对其非阿贝尔性质的明确实验探测。在这里,我们报告了在由双栅极、六方氮化硼封装的双层石墨烯组成的范德华异质结构中,在半整数 Landau 能级填充时观察到的稳健的偶数分数 FQH 相。测量得到的能隙是以前观察到的三倍。我们将这些 FQH 相与数值和理论模型进行了比较,同时控制载流子密度、层极化和磁场,并找到了预测存在非阿贝尔任意子的配对 Pfaffian 相的证据。具有不同 Landau 能级指数的状态之间的电场控制的能级交叉揭示了 FQH 相变的级联,包括偶数分数 FQH 相与可压缩复合费米子液体之间的连续相变。我们的结果确立了石墨烯作为研究拓扑和量子临界点相互作用以及探测非阿贝尔量子比特的原始和可调谐实验平台。