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

Siddharth Parameswaran

Professor of Physics

Research theme

  • Fields, strings, and quantum dynamics
  • Quantum materials
  • Quantum optics & ultra-cold matter

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Condensed Matter Theory
sid.parameswaran@physics.ox.ac.uk
Telephone: 01865 273968
Rudolf Peierls Centre for Theoretical Physics, room 70.29
Hilary Term 2026: Quantum Matter 2 Course Pages
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Odd Fracton Theories, Proximate Orders, and Parton Constructions

(2020)

Authors:

Michael Pretko, SA Parameswaran, Michael Hermele
More details from the publisher

Dynamics and transport at the threshold of many-body localization

Physics Reports Elsevier 862 (2020) 1-62

Authors:

Sarang Gopalakrishnan, Siddharth Ashok Parameswaran

Abstract:

Many-body localization (MBL) describes a class of systems that do not approach thermal equilibrium under their intrinsic dynamics; MBL and conventional thermalizing systems form distinct dynamical phases of matter, separated by a phase transition at which equilibrium statistical mechanics breaks down. True many-body localization is known to occur only under certain stringent conditions for perfectly isolated one-dimensional systems, with Hamiltonians that have strictly short-range interactions and lack any continuous non-Abelian symmetries. However, in practice, even systems that are not strictly MBL can be nearly MBL, with equilibration rates that are far slower than their other intrinsic timescales; thus, anomalously slow relaxation occurs in a much broader class of systems than strict localization. In this review we address transport and dynamics in such nearly-MBL systems from a unified perspective. Our discussion covers various classes of such systems: (i) disordered and quasiperiodic systems on the thermal side of the MBL-thermal transition; (ii) systems that are strongly disordered, but obstructed from localizing because of symmetry, interaction range, or dimensionality; (iii) multiple-component systems, in which some components would in isolation be MBL but others are not; and finally (iv) driven systems whose dynamics lead to exponentially slow rates of heating to infinite temperature. A theme common to many of these problems is that they can be understood in terms of approximately localized degrees of freedom coupled to a heat bath (or baths) consisting of thermal degrees of freedom; however, this putative bath is itself nontrivial, being either small or very slowly relaxing. We discuss anomalous transport, diverging relaxation times, and other signatures of the proximity to MBL in these systems. We also survey recent theoretical and numerical methods that have been applied to study dynamics on either side of the MBL transition.
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Glide symmetry breaking and Ising criticality in the quasi-1D magnet CoNb$_2$O$_6$

(2020)

Authors:

Michele Fava, Radu Coldea, SA Parameswaran
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Exciton band topology in spontaneous quantum anomalous Hall insulators: applications to twisted bilayer graphene

(2020)

Authors:

Yves H Kwan, Yichen Hu, Steven H Simon, SA Parameswaran
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Excitonic fractional quantum Hall hierarchy in Moiré heterostructures

(2020)

Authors:

Yves H Kwan, Yichen Hu, Steven H Simon, SA Parameswaran
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