Person: Kou, Angela
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Publication Dynamic Nuclear Polarization in the Fractional Quantum Hall Regime
(American Physical Society, 2010) Kou, Angela; McClure, Douglas Templeton; Marcus, C; Pfeiffer, Loren N.; West, Kenneth W.We investigate dynamic nuclear polarization in quantum point contacts (QPCs) in the integer and fractional quantum Hall regimes. Following the application of a dc bias, fractional plateaus in the QPC shift symmetrically about half filling of the lowest Landau level, (\nu = 1/2), suggesting an interpretation in terms of composite fermions. Polarizing and detecting at different filling factors indicates that Zeeman energy is reduced by the induced nuclear polarization. Mapping effects from integer to fractional regimes extends the composite fermion picture to include hyperfine coupling.
Publication Electron-hole asymmetric integer and fractional quantum Hall effect in bilayer graphene
(American Association for the Advancement of Science (AAAS), 2014) Kou, Angela; Feldman, Benjamin Ezekiel; Levin, Andrei; Halperin, Bertrand; Watanabe, Kenji; Taniguchi, Takashi; Yacoby, AmirThe nature of fractional quantum Hall (FQH) states is determined by the interplay between the Coulomb interaction and the symmetries of the system. The unique combination of spin, valley, and orbital degeneracies in bilayer graphene is predicted to produce novel and tunable FQH ground states. Here we present local electronic compressibility measurements of the FQH effect in the lowest Landau level of bilayer graphene. We observe incompressible FQH states at filling factors (\nu = 2p + 2/3) with hints of additional states appearing at (\nu = 2p + 3/5), where p = -2,-1, 0, and 1. This sequence of states breaks particle-hole symmetry and instead obeys a (\nu \rightarrow \nu + 2) symmetry, which highlights the importance of the orbital degeneracy for many-body states in bilayer graphene.
Publication Microscopic Properties of the Fractional Quantum Hall Effect
(2013-10-18) Kou, Angela; Halperin, Bertrand I.; Marcus, Charles; Yacoby, AmirThe fractional quantum Hall effect occurs when an extremely clean 2-dimensional fermion gas is subject to a magnetic field. This simple set of circumstances creates phenomena, such as edge reconstruction and fractional statistics, that remain subjects of experimental study 30 years after the discovery of the fractional quantum Hall effect. This thesis investigates the properties of excitations of the fractional quantum