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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

$\mathbb{Z}_4$ transitions in quantum loop models on a zig-zag ladder

SciPost Physics Stichting SciPost 17:5 (2024) 144

Authors:

Bowy La Riviere, Natalia Chepiga

Abstract:

We study the nature of quantum phase transitions out of \mathbb{Z}_4 ℤ 4 ordered phases in quantum loop models on a zig-zag ladder. We report very rich critical behavior that includes a pair of Ising transitions, a multi-critical Ashkin-Teller point and a remarkably extended interval of a chiral transition. Although plaquette states turn out to be essential to realize chiral transitions, we demonstrate that critical regimes can be manipulated by deforming the model as to increase the presence of leg-dimerized states. This can be done to the point where the chiral transition turns into first order, we argue that this is associated with the emergence of a critical end point.
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Probing universal critical scaling with scan density matrix renormalization group

Physical Review B American Physical Society (APS) 110:14 (2024) 144401
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Resolving chiral transitions in one-dimensional Rydberg arrays with quantum Kibble-Zurek mechanism and finite-time scaling

Physical Review B American Physical Society (APS) 110:12 (2024) 125113

Authors:

Jose Soto Garcia, Natalia Chepiga
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Realization of Wess-Zumino-Witten transitions with levels k = 6 and k = 4 in a frustrated spin-3 chain

Physical Review B American Physical Society (APS) 109:21 (2024) 214403
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Resilient Infinite Randomness Criticality for a Disordered Chain of Interacting Majorana Fermions.

Physical review letters 132:5 (2024) 056502

Authors:

Natalia Chepiga, Nicolas Laflorencie

Abstract:

The quantum critical properties of interacting fermions in the presence of disorder are still not fully understood. While it is well known that for Dirac fermions, interactions are irrelevant to the noninteracting infinite randomness fixed point (IRFP), the problem remains largely open in the case of Majorana fermions which further display a much richer disorder-free phase diagram. Here, pushing the limits of density matrix renormalization group simulations, we carefully examine the ground state of a Majorana chain with both disorder and interactions. Building on appropriate boundary conditions and key observables such as entanglement, energy gap, and correlations, we strikingly find that the noninteracting Majorana IRFP is very stable against finite interactions, in contrast with previous claims.
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