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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Dr. Natalia Chepiga

Royal Society University Research Fellow

Research theme

  • Fields, strings, and quantum dynamics
  • Quantum information and computation

Sub department

  • Rudolf Peierls Centre for Theoretical Physics
natalia.chepiga@physics.ox.ac.uk
personal website
  • About
  • Publications

Eight-vertex criticality in the interacting Kitaev chain

Physical Review B American Physical Society (APS) 107:8 (2023) L081106

Authors:

Natalia Chepiga, Frédéric Mila
More details from the publisher

From Kosterlitz-Thouless to Pokrovsky-Talapov transitions in spinless fermions and spin chains with next-nearest-neighbor interactions

Physical Review Research American Physical Society (APS) 4:4 (2022) 043225
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Conformal and chiral phase transitions in Rydberg chains

Physical Review Research 4:4 (2022)

Authors:

IA Maceira, N Chepiga, F Mila

Abstract:

Using density matrix renormalization group simulations on open chains, we map out the wave vector in the incommensurate disordered phase of a realistic model of Rydberg chains with 1/r6 interactions, and we locate and characterize the points along the commensurate lines where the transition out of the period 3 and 4 phases is conformal. We confirm that it is three-state Potts for the period-3 phase, and we show that it is Ashkin-Teller with ν≃0.80 for the period-4 phase. We further show that close to these points, the transition is still continuous, but with a completely different scaling of the wave vector, in agreement with a chiral transition. Finally, we propose to use the conformal points as benchmarks for Kibble-Zurek experiments, defining a roadmap towards a conclusive identification of the chiral universality class.
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From SU ( 2 ) 5 to SU ( 2 ) 3 Wess-Zumino-Witten transitions in a frustrated spin- 5 2 chain

Physical Review B American Physical Society (APS) 105:17 (2022) 174402

Authors:

Natalia Chepiga, Ian Affleck, Frédéric Mila
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Critical properties of quantum three- And four-state Potts models with boundaries polarized along the transverse field

Scipost Physics Core 5:2 (2022)

Abstract:

By computing the low-lying energy excitation spectra with the density matrix renormalization group algorithm we show that boundaries polarized in the direction of the transverse field lead to scale-invariant conformal towers of states at the critical point of the quantum four-state Potts model - a special symmetric case of the Ashkin-Teller model. Furthermore, by direct comparison of the excitation spectra we phenomenologically establish the duality between the transverse-polarized and three-state-mixed boundary conditions at the four-state Potts critical point. Finally, for completeness, we verify that in the quantum three-state Potts model the "new" boundary conditions dual to the mixed ones can be realized by polarizing edge spins along the transverse field.
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