Research paperExperimental CharacterizationTheoreticalOrbitally tuned composite-fermion metal-to-superfluid transitionsRavi Kumar, Tomer Firon, André Haug, Misha Yutushui et al.2025·10.1007/978-3-642-79319-6·arXiv:2512.21383AbstractThe effective interaction between composite fermions, set entirely by the Coulomb potential and the underlying electronic Landau level orbitals, can stabilize exotic fractional quantum Hall states. In particular, half-filled Landau levels with different orbital character can host either metallic or paired phases of composite fermions. Here, we leverage experimental control over the orbital composition to realize a composite-fermion pairing transition in the first excited Landau level of bilayer graphene. Transport measurements at filling factors ν = 9/2 and 11/2 reveal conductive states giving way to well-developed plateaus with increasing displacement fields. These states are insensitive to an in-plane magnetic field, indicating single-component ground states and thus pointing at non-Abelian orders. Our numerical study, based on displacement-field-dependent Landau-level wavefunctions, supports the orbital origin of the pairing transition and suggests Moore-Read or anti-Pfaffian ground states.Read more
One of two dual graphite-gated bilayer graphene devices measured in transport; the main text data were obtained from this device.2 characterizations2 properties3 figuresExperimentalCStudied MaterialExpand
Research paperExperimental CharacterizationTheoreticalOrbitally tuned composite-fermion metal-to-superfluid transitionsRavi Kumar, Tomer Firon, André Haug, Misha Yutushui et al.2025·10.1007/978-3-642-79319-6·arXiv:2512.21383AbstractThe effective interaction between composite fermions, set entirely by the Coulomb potential and the underlying electronic Landau level orbitals, can stabilize exotic fractional quantum Hall states. In particular, half-filled Landau levels with different orbital character can host either metallic or paired phases of composite fermions. Here, we leverage experimental control over the orbital composition to realize a composite-fermion pairing transition in the first excited Landau level of bilayer graphene. Transport measurements at filling factors ν = 9/2 and 11/2 reveal conductive states giving way to well-developed plateaus with increasing displacement fields. These states are insensitive to an in-plane magnetic field, indicating single-component ground states and thus pointing at non-Abelian orders. Our numerical study, based on displacement-field-dependent Landau-level wavefunctions, supports the orbital origin of the pairing transition and suggests Moore-Read or anti-Pfaffian ground states.Read more
One of two dual graphite-gated bilayer graphene devices measured in transport; the main text data were obtained from this device.2 characterizations2 properties3 figuresExperimentalCStudied MaterialExpand
Research paperExperimental CharacterizationTheoreticalOrbitally tuned composite-fermion metal-to-superfluid transitionsRavi Kumar, Tomer Firon, André Haug, Misha Yutushui et al.2025·10.1007/978-3-642-79319-6·arXiv:2512.21383AbstractThe effective interaction between composite fermions, set entirely by the Coulomb potential and the underlying electronic Landau level orbitals, can stabilize exotic fractional quantum Hall states. In particular, half-filled Landau levels with different orbital character can host either metallic or paired phases of composite fermions. Here, we leverage experimental control over the orbital composition to realize a composite-fermion pairing transition in the first excited Landau level of bilayer graphene. Transport measurements at filling factors ν = 9/2 and 11/2 reveal conductive states giving way to well-developed plateaus with increasing displacement fields. These states are insensitive to an in-plane magnetic field, indicating single-component ground states and thus pointing at non-Abelian orders. Our numerical study, based on displacement-field-dependent Landau-level wavefunctions, supports the orbital origin of the pairing transition and suggests Moore-Read or anti-Pfaffian ground states.Read more
One of two dual graphite-gated bilayer graphene devices measured in transport; the main text data were obtained from this device.2 characterizations2 properties3 figuresExperimentalCStudied MaterialExpand
Research paperExperimental CharacterizationTheoreticalOrbitally tuned composite-fermion metal-to-superfluid transitionsRavi Kumar, Tomer Firon, André Haug, Misha Yutushui et al.2025·10.1007/978-3-642-79319-6·arXiv:2512.21383AbstractThe effective interaction between composite fermions, set entirely by the Coulomb potential and the underlying electronic Landau level orbitals, can stabilize exotic fractional quantum Hall states. In particular, half-filled Landau levels with different orbital character can host either metallic or paired phases of composite fermions. Here, we leverage experimental control over the orbital composition to realize a composite-fermion pairing transition in the first excited Landau level of bilayer graphene. Transport measurements at filling factors ν = 9/2 and 11/2 reveal conductive states giving way to well-developed plateaus with increasing displacement fields. These states are insensitive to an in-plane magnetic field, indicating single-component ground states and thus pointing at non-Abelian orders. Our numerical study, based on displacement-field-dependent Landau-level wavefunctions, supports the orbital origin of the pairing transition and suggests Moore-Read or anti-Pfaffian ground states.Read more
One of two dual graphite-gated bilayer graphene devices measured in transport; the main text data were obtained from this device.2 characterizations2 properties3 figuresExperimentalCStudied MaterialExpand