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Klein Kvorning, ThomasORCID iD iconorcid.org/0000-0001-7399-9618
Publications (10 of 12) Show all publications
Martinez, M. F., Jezequel, L., Bardarson, J. H., Klein Kvorning, T. & Hannukainen, J. D. (2026). One-particle density matrix framework for mode-shell correspondence: Characterizing topology in amorphous higher-order topological insulators. Physical Review Research, 8(2), Article ID 023320.
Open this publication in new window or tab >>One-particle density matrix framework for mode-shell correspondence: Characterizing topology in amorphous higher-order topological insulators
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2026 (English)In: Physical Review Research, E-ISSN 2643-1564, Vol. 8, no 2, article id 023320Article in journal (Refereed) Published
Abstract [en]

We present a framework for characterizing higher-order topological phases directly from the one-particle density matrix, without any reference to an underlying Hamiltonian. Our approach extends the mode-shell correspondence, originally formulated for single-particle Hamiltonians, to Gaussian states subject to chiral constraints. In this correspondence, the mode index counts topological boundary modes, while the shell index quantifies the bulk topology in a region surrounding the modes, providing a bulk-boundary diagnostic. In one-dimensional topological insulators, the shell index reduces to the local chiral marker, recovering the winding number in the translation-invariant limit. We apply the mode-shell correspondence to a C4-symmetric higher-order topological insulator with a chiral constraint and show that a fractional shell index implies that the higher-order phase is intrinsic. The one-particle density matrix is formulated in real space, so the mode-shell correspondence also applies to models without translation invariance. By introducing structural disorder into the C4-symmetric higher-order insulator, we show that the mode-shell correspondence remains a meaningful diagnostic in amorphous structures. The mode-shell correspondence generalizes to interacting states with a gapped bulk spectrum in the one-particle density matrix, providing a practical and diverse route to characterize higher-order topology from the quantum state itself.

Place, publisher, year, edition, pages
American Physical Society (APS), 2026
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-385415 (URN)10.1103/rt48-gpfm (DOI)001808093700003 ()2-s2.0-105043116579 (Scopus ID)
Note

QC 20260714

Available from: 2026-07-14 Created: 2026-07-14 Last updated: 2026-07-14Bibliographically approved
Bauer, N. P., Trauzettel, B., Klein Kvorning, T., Bardarson, J. H. & Artiaco, C. (2025). Local information flow in quantum quench dynamics. Physical Review A: covering atomic, molecular, and optical physics and quantum information, 112(2), 1-14, Article ID 022221.
Open this publication in new window or tab >>Local information flow in quantum quench dynamics
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2025 (English)In: Physical Review A: covering atomic, molecular, and optical physics and quantum information, ISSN 2469-9926, E-ISSN 2469-9934, Vol. 112, no 2, p. 1-14, article id 022221Article, review/survey (Refereed) Published
Abstract [en]

We investigate the out-of-equilibrium dynamics of quantum information in one-dimensional systems undergoing a quantum quench using a local perspective based on the information lattice. This framework provides a scale- and space-resolved decomposition of quantum correlations, enabling a hydrodynamic description of the information flow through well-defined local densities—termed local information—and currents. We apply this framework to three local quenches in noninteracting fermionic chains: (i) the release of a single particle into an empty tight-binding chain, (ii) the connection of two critical chains via the removal of a central barrier, and (iii) the coupling of a topological Kitaev chain to a critical chain. In each case, the information lattice reveals the local structure of correlation buildup and information interface effects, going beyond global measures such as the von Neumann entropy. In particular, through the information lattice, we uncover the signatures in the local information flow associated with topological edge modes and analytically explain the fractional von Neumann entropy values observed in Majorana quench protocols. Our approach is general and applicable to interacting, disordered, and open systems, providing a powerful tool for characterizing quantum information dynamics.

Place, publisher, year, edition, pages
American Physical Society (APS), 2025
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-377752 (URN)10.1103/v7gb-5gq8 (DOI)001562851200007 ()2-s2.0-105020923071 (Scopus ID)
Note

QC 20260305

Available from: 2026-03-05 Created: 2026-03-05 Last updated: 2026-03-05Bibliographically approved
Hansson, T. H., Arouca, R. & Klein Kvorning, T. (2025). On the relation between fractional charge and statistics. SciPost Physics, 18(6), Article ID 197.
Open this publication in new window or tab >>On the relation between fractional charge and statistics
2025 (English)In: SciPost Physics, E-ISSN 2542-4653, Vol. 18, no 6, article id 197Article in journal (Refereed) Published
Abstract [en]

We revisit an argument, originally given by Kivelson and Rocek, for why the existence of fractional charge necessarily implies fractional statistics. In doing so, we resolve a contradiction in the original argument, and in the case of a nu = 1/m Laughlin holes, we also show that the standard relation between fractional charge and statistics is necessary by an argument based on a t'Hooft anomaly in a one-form global Zm symmetry.

Place, publisher, year, edition, pages
Stichting SciPost, 2025
National Category
Probability Theory and Statistics
Identifiers
urn:nbn:se:kth:diva-370527 (URN)10.21468/SciPostPhys.18.6.197 (DOI)001513971300002 ()2-s2.0-105008444241 (Scopus ID)
Note

QC 20251021

Available from: 2025-10-21 Created: 2025-10-21 Last updated: 2025-10-21Bibliographically approved
Artiaco, C., Klein Kvorning, T., Aceituno Chavez, D., Herviou, L. & Bardarson, J. H. (2025). Universal Characterization of Quantum Many-Body States through Local Information. Physical Review Letters, 134(19), Article ID 190401.
Open this publication in new window or tab >>Universal Characterization of Quantum Many-Body States through Local Information
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2025 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 134, no 19, article id 190401Article in journal (Refereed) Published
Abstract [en]

We propose a universal framework for classifying quantum states based on their scale-resolved correlation structure. Using the recently introduced information lattice, which provides an operational definition of the total amount of correlations at each scale, we define intrinsic characteristic length scales of quantum states. We analyze ground and midspectrum eigenstates of the disordered interacting Kitaev chain, showing that our framework provides a novel unbiased approach to quantum matter.

Place, publisher, year, edition, pages
American Physical Society (APS), 2025
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-364005 (URN)10.1103/PhysRevLett.134.190401 (DOI)001498969500010 ()40446255 (PubMedID)2-s2.0-105005144825 (Scopus ID)
Note

QC 20250603

Available from: 2025-06-02 Created: 2025-06-02 Last updated: 2025-07-04Bibliographically approved
Artiaco, C., Fleckenstein, C., Aceituno Chavéz, D., Klein Kvorning, T. & Bardarson, J. H. (2024). Efficient Large-Scale Many-Body Quantum Dynamics via Local-Information Time Evolution. PRX Quantum, 5(2), Article ID 020352.
Open this publication in new window or tab >>Efficient Large-Scale Many-Body Quantum Dynamics via Local-Information Time Evolution
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2024 (English)In: PRX Quantum, E-ISSN 2691-3399, Vol. 5, no 2, article id 020352Article in journal (Refereed) Published
Abstract [en]

During time evolution of many-body systems entanglement grows rapidly, limiting exact simulations to small-scale systems or small timescales. Quantum information tends, however, to flow towards larger scales without returning to local scales, such that its detailed large-scale structure does not directly affect local observables. This allows for the removal of large-scale quantum information in a way that preserves all local observables and gives access to large-scale and large-time quantum dynamics. To this end, we use the recently introduced information lattice to organize quantum information into different scales, allowing us to define local information and information currents that we employ to systematically discard long-range quantum correlations in a controlled way. Our approach relies on decomposing the system into subsystems up to a maximum scale and time evolving the subsystem density matrices by solving the subsystem von Neumann equations in parallel. Importantly, the information flow needs to be preserved during the discarding of large-scale information. To achieve this without the need to make assumptions about the microscopic details of the information current, we introduce a second scale at which information is discarded, while using the state at the maximum scale to accurately obtain the information flow. The resulting algorithm, which we call local-information time evolution, is highly versatile and suitable for investigating many-body quantum dynamics in both closed and open quantum systems with diverse hydrodynamic behaviors. We present results for the energy transport in the mixed-field Ising model and the magnetization transport in the XX spin chain with onsite dephasing where we accurately determine the power-law exponent and the diffusion coefficients. Furthermore, the information lattice framework employed here promises to offer insightful results about the spatial and temporal behavior of entanglement in many-body systems.

Place, publisher, year, edition, pages
American Physical Society (APS), 2024
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-347616 (URN)10.1103/PRXQuantum.5.020352 (DOI)001263233400001 ()2-s2.0-85195238530 (Scopus ID)
Note

QC 20240613

Available from: 2024-06-12 Created: 2024-06-12 Last updated: 2024-11-21Bibliographically approved
Hannukainen, J. D., Martine, M. F., Bardarson, J. H. & Klein Kvorning, T. (2024). Interacting local topological markers: A one-particle density matrix approach for characterizing the topology of interacting and disordered states. Physical Review Research, 6(3), Article ID L032045.
Open this publication in new window or tab >>Interacting local topological markers: A one-particle density matrix approach for characterizing the topology of interacting and disordered states
2024 (English)In: Physical Review Research, E-ISSN 2643-1564, Vol. 6, no 3, article id L032045Article in journal (Refereed) Published
Abstract [en]

While topology is a property of a quantum state itself, most existing methods for characterizing the topology of interacting phases of matter require direct knowledge of the underlying Hamiltonian. We offer an alternative by utilizing the one-particle density matrix formalism to extend the concept of the Chern, chiral, and Chern-Simons markers to include interactions. The one-particle density matrix of a free-fermion state is a projector onto the occupied bands, defining a Brillouin zone bundle of the given topological class. This is no longer the case in the interacting limit, but as long as the one-particle density matrix is gapped, its spectrum can be adiabatically flattened, connecting it to a topologically equivalent projector. The corresponding topological markers thus characterize the topology of the interacting phase. Importantly, the one-particle density matrix is defined in terms of a given state alone, making the local markers numerically favorable, and providing a valuable tool for characterizing topology of interacting systems when only the state itself is available. To demonstrate the practical use of the markers we use the chiral marker to identify the topology of midspectrum eigenstates of the Ising-Majorana chain across the transition between the ergodic and many-body localized phases. We also apply the chiral marker to random states with a known topology, and compare it with the entanglement spectrum degeneracy.

Place, publisher, year, edition, pages
American Physical Society (APS), 2024
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-352942 (URN)10.1103/PhysRevResearch.6.L032045 (DOI)001302106400001 ()2-s2.0-85203582477 (Scopus ID)
Note

QC 20240910

Available from: 2024-09-10 Created: 2024-09-10 Last updated: 2026-05-19Bibliographically approved
Aceituno Chavez, D., Artiaco, C., Klein Kvorning, T., Herviou, L. & Bardarson, J. H. (2024). Ultraslow Growth of Number Entropy in an ℓ-Bit Model of Many-Body Localization. Physical Review Letters, 133(12), Article ID 126502.
Open this publication in new window or tab >>Ultraslow Growth of Number Entropy in an ℓ-Bit Model of Many-Body Localization
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2024 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 133, no 12, article id 126502Article in journal (Refereed) Published
Abstract [en]

We demonstrate that slow growth of the number entropy following a quench from a local product state is consistent with many-body localization. To do this, we construct a novel random circuit ℓ-bit model with exponentially localized ℓ-bits and exponentially decaying interactions between them. We observe an ultraslow growth of the number entropy starting from a Néel state, saturating at a value that grows with system size. This suggests that the observation of such growth in microscopic models is not sufficient to rule out many-body localization.

Place, publisher, year, edition, pages
American Physical Society (APS), 2024
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-354274 (URN)10.1103/PhysRevLett.133.126502 (DOI)001381679500001 ()39373440 (PubMedID)2-s2.0-85204919772 (Scopus ID)
Note

QC 20250122

Available from: 2024-10-02 Created: 2024-10-02 Last updated: 2025-01-22Bibliographically approved
Hannukainen, J. D., Martine, M. F., Bardarson, J. H. & Klein Kvorning, T. (2022). Local Topological Markers in Odd Spatial Dimensions and Their Applicationto Amorphous Topological Matter br. Physical Review Letters, 129(27), Article ID 277601.
Open this publication in new window or tab >>Local Topological Markers in Odd Spatial Dimensions and Their Applicationto Amorphous Topological Matter br
2022 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 129, no 27, article id 277601Article in journal (Refereed) Published
Abstract [en]

Local topological markers, topological invariants evaluated by local expectation values, are valuable forcharacterizing topological phases in materials lacking translation invariance. The Chern marker-the Chernnumber expressed in terms of the Fourier transformed Chern character-is an easily applicable local markerin even dimensions, but there are no analogous expressions for odd dimensions. We provide general analyticexpressions for local markers for free-fermion topological states in odd dimensions protected by localsymmetries: aChiral marker, a localZmarker which in case of translation invariance is equivalent to thechiral winding number, and aChern-Simons marker, a localZ2marker characterizing all nonchiral phases inodd dimensions. We achieve this by introducing a one-parameter familyP theta of single-particle densitymatrices interpolating between a trivial state and the state of interest. By interpreting the parameter theta as anadditional dimension, we calculate the Chern marker for the familyP theta. We demonstrate the practical use ofthese markers by characterizing the topological phases of two amorphous Hamiltonians in three dimensions:a topological superconductor (Zclassification) and a topological insulator (Z2classification).

Place, publisher, year, edition, pages
American Physical Society (APS), 2022
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-324050 (URN)10.1103/PhysRevLett.129.277601 (DOI)000912378400008 ()36638300 (PubMedID)2-s2.0-85145440329 (Scopus ID)
Note

QC 20230222

Available from: 2023-02-22 Created: 2023-02-22 Last updated: 2026-05-19Bibliographically approved
Klein Kvorning, T., Herviou, L. & Bardarson, J. H. (2022). Time-evolution of local information: Thermalization dynamics of local observables. SciPost Physics, 13(4), Article ID 080.
Open this publication in new window or tab >>Time-evolution of local information: Thermalization dynamics of local observables
2022 (English)In: SciPost Physics, E-ISSN 2542-4653, Vol. 13, no 4, article id 080Article in journal (Refereed) Published
Abstract [en]

Quantum many-body dynamics generically result in increasing entanglement that eventually leads to thermalization of local observables. This makes the exact description of the dynamics complex despite the apparent simplicity of (high-temperature) thermal states. For accurate but approximate simulations one needs a way to keep track of essential (quantum) information while discarding inessential one. To this end, we first introduce the concept of the information lattice, which supplements the physical spatial lattice with an additional dimension and where a local Hamiltonian gives rise to well-defined locally conserved von Neumann information current. This provides a convenient and insightful way of capturing the flow, through time and space, of information during quantum time-evolution, and gives a distinct signature of when local degrees of freedom decouple from long-range entanglement. As an example, we describe such de-coupling of local degrees of freedom for the mixed-field transverse Ising model. Building on this, we secondly construct algorithms to time-evolve sets of local density matrices without any reference to a global state. With the notion of information currents, we motivate algorithms based on the intuition that information for statistical reasons flows from small to large scales. Using this guiding principle, we construct an algorithm that, at worst, shows two-digit convergence in time-evolutions up to very late times for diffusion process governed by the mixed-field transverse Ising Hamiltonian. While we focus on dynamics in 1D with nearest-neighbor Hamiltonians, the algorithms do not essentially rely on these assumptions and can in principle be generalized to higher dimensions and more complicated Hamiltonians.

Place, publisher, year, edition, pages
Stichting SciPost, 2022
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-321274 (URN)10.21468/SciPostPhys.13.4.080 (DOI)000869464500008 ()2-s2.0-85142368062 (Scopus ID)
Note

QC 20221111

Available from: 2022-11-11 Created: 2022-11-11 Last updated: 2023-06-08Bibliographically approved
Martinez, M. F., Jezequel, L., Klein Kvorning, T. & Hannukainen, J. D.A One-Particle Density Matrix Framework for Mode-Shell Correspondence: Characterizing Topology in Amorphous Higher-Order Topological Insulators.
Open this publication in new window or tab >>A One-Particle Density Matrix Framework for Mode-Shell Correspondence: Characterizing Topology in Amorphous Higher-Order Topological Insulators
(English)Manuscript (preprint) (Other academic)
Abstract [en]

We present a framework for characterizing higher-order topological phases directly from the one-particle density matrix, without any reference to an underlying Hamiltonian. Our approach extends the mode-shell correspondence, originally formulated for single-particle Hamiltonians, to Gaussian states subject to chiral constraints. In this correspondence, the mode index counts topological boundary modes, while the shell index quantifies the bulk topology in a region surrounding the modes, providing a bulk-boundary diagnostic. In one-dimensional topological insulators, the shell index reduces to the local chiral marker, recovering the winding number in the translation-invariant limit. We apply the mode-shell correspondence to a C4-symmetric higher-order topological insulator with a chiral constraint and show that a fractional shell index implies that the higher-order phase is intrinsic. The one-particle density matrix is formulated in real space, so the mode-shell correspondence also applies to models without translation invariance. By introducing structural disorder into the C4-symmetric higher-order insulator, we show that the mode-shell correspondence remains a meaningful diagnostic in amorphous structures. The mode-shell correspondence generalizes to interacting states with a gapped bulk spectrum in the one-particle density matrix, providing a practical and diverse route to characterize higher-order topology from the quantum state itself.

National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-381645 (URN)10.48550/arXiv.2509.03632 (DOI)
Note

QC 20260601

Available from: 2026-05-19 Created: 2026-05-19 Last updated: 2026-06-01Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0001-7399-9618

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