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Fleckenstein, ChristophORCID iD iconorcid.org/0000-0002-6750-3265
Publications (9 of 9) Show all publications
Sahin, O., Al Asadi, H., Schindler, P. M., Pillai, A., Sanchez, E., Markham, M., . . . Ajoy, A. (2025). Micromotion-based DC sensing using continuously tracked trajectories of dipolar coupled nuclear spins. Physical Review Research, 7(4), Article ID 043272.
Open this publication in new window or tab >>Micromotion-based DC sensing using continuously tracked trajectories of dipolar coupled nuclear spins
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2025 (English)In: Physical Review Research, E-ISSN 2643-1564, Vol. 7, no 4, article id 043272Article in journal (Refereed) Published
Abstract [en]

We report an experimental approach to excite, stabilize, and continuously track Bloch sphere trajectories of dipolar-coupled nuclear spins in a solid. We demonstrate these capabilities on a model system of hyperpolarized C-13 nuclear spins in diamond. We elucidate a method to drive, and preserve, the motion of spins in complex three-dimensional trajectories for over T '(2)>27s even in the presence of interspin coupling. Indeed, without quantum control, interspin interactions lead to rapid spin decay in T*(2)approximate to 1.5ms. Furthermore, we show that the motion of the spins can be continuously tracked in three dimensions on the Bloch sphere for over 35s. During this time the spins complete >68000 closed precession orbits, exhibiting high stability and robustness against error. Leveraging these long-lived, robust spin trajectories we devise a novel nonequilibrium quantum sensing scheme for DC magnetic fields, based on micromotion dynamics, and without a static counterpart. Sensing here proceeds for the entire T '(2) period, orders of magnitude longer than T*(2), and operates in the dense sensor limit, yielding significant sensitivity improvements. Our results suggest new ways to stabilize and interrogate strongly coupled quantum systems through periodic driving and portend powerful applications of rigid spin orbits in quantum sensing.

Place, publisher, year, edition, pages
American Physical Society (APS), 2025
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-377214 (URN)10.1103/bgdc-rgkd (DOI)001642016200010 ()2-s2.0-105024359920 (Scopus ID)
Note

QC 20260224

Available from: 2026-02-24 Created: 2026-02-24 Last updated: 2026-02-24Bibliographically approved
Harkins, K., Fleckenstein, C., D'Souza, N., Schindler, P. M., Marchiori, D., Artiaco, C., . . . Ajoy, A. (2025). Nanoscale engineering and dynamic stabilization of mesoscopic spin textures. Science Advances, 11(13), Article ID eadn9021.
Open this publication in new window or tab >>Nanoscale engineering and dynamic stabilization of mesoscopic spin textures
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2025 (English)In: Science Advances, E-ISSN 2375-2548, Vol. 11, no 13, article id eadn9021Article in journal (Refereed) Published
Abstract [en]

Thermalization, while ubiquitous in physics, has traditionally been viewed as an obstacle to be mitigated. In contrast, we demonstrate here the use of thermalization in the generation, control, and readout of "shell-like" spin textures with interacting 13C nuclear spins in diamond, wherein spins are polarized oppositely on either side of a critical radius. The textures span several nanometers and encompass many hundred spins; they are created and interrogated without manipulating the nuclear spins individually. Long-time stabilization is achieved via prethermalization to a Floquet-engineered Hamiltonian under the electronic gradient field: The texture is therefore metastable and robust against spin diffusion. This enables the state to endure over multiple minutes before it decays. Our work on spin-state engineering paves the way for applications in quantum simulation and nanoscale imaging.

Place, publisher, year, edition, pages
American Association for the Advancement of Science (AAAS), 2025
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-363140 (URN)10.1126/sciadv.adn9021 (DOI)001455518300018 ()40153504 (PubMedID)2-s2.0-105001683678 (Scopus ID)
Note

QC 20250506

Available from: 2025-05-06 Created: 2025-05-06 Last updated: 2025-05-06Bibliographically 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
Traverso, S., Fleckenstein, C., Sassetti, M. & Ziani, N. T. (2023). An exact local mapping from clock-spins to fermions. SCIPOST PHYSICS CORE, 6(3), 1-25
Open this publication in new window or tab >>An exact local mapping from clock-spins to fermions
2023 (English)In: SCIPOST PHYSICS CORE, ISSN 2666-9366, Vol. 6, no 3, p. 1-25Article in journal (Refereed) Published
Abstract [en]

Clock-spin models are attracting great interest, due to both their rich phase diagram and their connection to parafermions. In this context, we derive an exact local mapping from clock-spin to fermionic partition functions. Such mapping, akin to techniques introduced 1 by Fedotov and Popov for spin 2 chains, grants access to well established numerical tools for the perturbative treatment of fermionic systems in the clock-spin framework. Moreover, in one dimension, it allows to use bosonization to access the low energy properties of clock-spin models. Finally, aside from the direct application in clock-spin models, this new mapping enables the conception of interesting fermionic models, based on the clock-spin counterparts.

Place, publisher, year, edition, pages
Stichting SciPost, 2023
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-335174 (URN)10.21468/SciPostPhysCore.6.3.055 (DOI)001050680800001 ()2-s2.0-85171372318 (Scopus ID)
Note

QC 20230904

Available from: 2023-09-04 Created: 2023-09-04 Last updated: 2023-10-03Bibliographically approved
Beatrez, W., Fleckenstein, C., Pillai, A., de Leon Sanchez, E., Akkiraju, A., Diaz Alcala, J., . . . Ajoy, A. (2023). Critical prethermal discrete time crystal created by two-frequency driving. Nature Physics, 19(3), 407-413
Open this publication in new window or tab >>Critical prethermal discrete time crystal created by two-frequency driving
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2023 (English)In: Nature Physics, ISSN 1745-2473, E-ISSN 1745-2481, Vol. 19, no 3, p. 407-413Article in journal (Refereed) Published
Abstract [en]

Discrete time crystals are non-equilibrium many-body phases of matter characterized by spontaneously broken discrete time-translation symmetry under periodic driving. At sufficiently high driving frequencies, the system enters the Floquet prethermalization regime, in which the periodically driven many-body state has a lifetime vastly exceeding the intrinsic decay time of the system. Here, we report the observation of long-lived prethermal discrete time-crystalline order in a three-dimensional (3D) lattice of 13C nuclei in diamond at room temperature. We demonstrate a two-frequency driving protocol, involving an interleaved application of slow and fast drives that simultaneously prethermalize the spins with an emergent quasi-conserved magnetization along the x̂ axis. This enables continuous and highly resolved observation of their dynamic evolution. We obtain videos of the time-crystalline response with a clarity and throughput orders of magnitude greater than previous experiments. Parametric control over the drive frequencies allows us to reach time-crystal lifetimes of up to 396 Floquet cycles, which we measure in a single-shot experiment. Such rapid measurement enables detailed characterization of the entire phase diagram, highlighting the role of prethermalization in stabilizing the time-crystal response. The two-frequency drive approach expands the toolkit for investigating non-equilibrium phases of matter stabilized by emergent quasi-conservation laws.

Place, publisher, year, edition, pages
Springer Nature, 2023
National Category
Condensed Matter Physics Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:kth:diva-330079 (URN)10.1038/s41567-022-01891-7 (DOI)000919544100001 ()2-s2.0-85146156624 (Scopus ID)
Note

QC 20230626

Available from: 2023-06-26 Created: 2023-06-26 Last updated: 2023-06-26Bibliographically approved
Fleckenstein, C., Zorzato, A., Varjas, D., Bergholtz, E. J., Bardarson, J. H. & Tiwari, A. (2022). Non-Hermitian topology in monitored quantum circuits. Physical Review Research, 4(3), Article ID L032026.
Open this publication in new window or tab >>Non-Hermitian topology in monitored quantum circuits
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2022 (English)In: Physical Review Research, E-ISSN 2643-1564, Vol. 4, no 3, article id L032026Article in journal (Refereed) Published
Abstract [en]

We demonstrate that genuinely non-Hermitian topological phases and corresponding topological phase tran-sitions can be naturally realized in monitored quantum circuits, exemplified by the paradigmatic non-Hermitian Su-Schrieffer-Heeger model. We emulate this model by a 1D chain of spinless electrons evolving under unitary dynamics and subject to periodic measurements that are stochastically invoked. The non-Hermitian topology is visible in topological invariants adapted to the context of monitored circuits. For instance, the topological phase diagram of the monitored realization of the non-Hermitian Su-Schrieffer-Heeger model is obtained from the biorthogonal polarization computed from an effective Hamiltonian of the monitored system. Importantly, our monitored circuit realization allows direct access to steady-state biorthogonal expectation values of generic observables, and hence, to measure physical properties of a genuine non-Hermitian model. We expect our results to be applicable more generally to a wide range of models that host non-Hermitian topological phases.

Place, publisher, year, edition, pages
American Physical Society (APS), 2022
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-322146 (URN)10.1103/PhysRevResearch.4.L032026 (DOI)000878118500004 ()2-s2.0-85137264148 (Scopus ID)
Note

QC 20221202

Available from: 2022-12-02 Created: 2022-12-02 Last updated: 2022-12-02Bibliographically approved
Fleckenstein, C., Ziani, N. T., Calzona, A., Sassetti, M. & Trauzettel, B. (2021). Formation and detection of Majorana modes in quantum spin Hall trenches. Physical Review B, 103(12), Article ID 125303.
Open this publication in new window or tab >>Formation and detection of Majorana modes in quantum spin Hall trenches
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2021 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 103, no 12, article id 125303Article in journal (Refereed) Published
Abstract [en]

We propose a novel realization for a topologically superconducting phase hosting Majorana zero modes on the basis of quantum spin Hall systems. Remarkably, our proposal is completely free of ferromagnets. Instead, we confine helical edge states around a narrow defect line of finite length in a two-dimensional topological insulator. We demonstrate the formation of a new topological regime, hosting protected Majorana modes in the presence of s-wave superconductivity and Zeeman coupling. Interestingly, when the system is weakly tunnel coupled to helical edge state reservoirs, a particular transport signature is associated with the presence of a non-Abelian Majorana zero mode.

Place, publisher, year, edition, pages
American Physical Society (APS), 2021
National Category
Physical Sciences
Identifiers
urn:nbn:se:kth:diva-293015 (URN)10.1103/PhysRevB.103.125303 (DOI)000627564900005 ()2-s2.0-85102706128 (Scopus ID)
Note

QC 20210419

Available from: 2021-04-19 Created: 2021-04-19 Last updated: 2022-06-25Bibliographically approved
Fleckenstein, C. & Bukov, M. (2021). Prethermalization and thermalization in periodically driven many-body systems away from the high-frequency limit. Physical Review B, 103(14), Article ID L140302.
Open this publication in new window or tab >>Prethermalization and thermalization in periodically driven many-body systems away from the high-frequency limit
2021 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 103, no 14, article id L140302Article in journal (Refereed) Published
Abstract [en]

We investigate a class of periodically driven many-body systems that allows us to extend the phenomenon of prethermalization to the vicinity of isolated intermediate-to-low drive frequencies away from the high-frequency limit. We provide numerical evidence for the formation of a parametrically long-lived prethermal plateau, captured by an effective Floquet Hamiltonian computed using the replica inverse-frequency expansion, and demonstrate its stability with respect to random perturbations in the drive period. Considering exclusively nonintegrable Floquet Hamiltonians, we find that heating rates are nonuniversal: we observe Fermi's golden rule scaling, power-law scaling inconsistent with the golden rule, and non-power-law scaling, depending on the drive. Despite the asymptotic character of the inverse-frequency expansion, we show that it describes the thermostatic properties of the state all along the evolution up to infinite temperature, with higher-order terms improving the accuracy. Our results suggest a dynamical mechanism to gradually increase the temperature in isolated quantum simulators, such as ultracold atoms, and open up an alternative possibility to investigate thermal phase transitions and the interplay between thermal and quantum criticality using Floquet drives.

Place, publisher, year, edition, pages
American Physical Society (APS), 2021
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-296203 (URN)10.1103/PhysRevB.103.L140302 (DOI)000646722000004 ()2-s2.0-85105107202 (Scopus ID)
Note

QC 20210609

Available from: 2021-06-09 Created: 2021-06-09 Last updated: 2022-06-25Bibliographically approved
Fleckenstein, C. & Bukov, M. (2021). Thermalization and prethermalization in periodically kicked quantum spin chains. Physical Review B, 103(14), Article ID 144307.
Open this publication in new window or tab >>Thermalization and prethermalization in periodically kicked quantum spin chains
2021 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 103, no 14, article id 144307Article in journal (Refereed) Published
Abstract [en]

We study the dynamics of periodically kicked many-body systems away from the high-frequency regime, and discuss a family of Floquet systems where the notion of prethermalization can be naturally extended to intermediate and low driving frequencies. We investigate numerically the dynamics of both integrable and nonintegrable systems, and report on the formation of a long-lived prethermal plateau, akin to the high-frequency limit, where the system thermalizes with respect to an effective Hamiltonian captured by the inverse-frequency expansion (IFE). Unlike the high-frequency regime, we find that the relevant heating times are model dependent: we analyze the stability of the prethermal plateau to small perturbations in the drive period and show that, in a spin chain whose IFE is intractable, the plateau duration is insensitive to the perturbation strength, in contrast to a chain where the IFE admits the resummation of an entire subseries. Infinitesimal perturbations are enough to restore the ergodic properties of the system, and decrease residual finite-size effects. Although the regime where the Floquet system leaves the prethermal plateau and starts heating up to infinite temperature is not captured by the IFE, we provide evidence that the evolved subsystem is described well by a thermal state with respect to the IFE Hamiltonian, with a gradually changing temperature, in accord with the eigenstate thermalization hypothesis.

Place, publisher, year, edition, pages
American Physical Society (APS), 2021
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:kth:diva-296204 (URN)10.1103/PhysRevB.103.144307 (DOI)000646722000001 ()2-s2.0-85105085323 (Scopus ID)
Note

QC 20210603

Available from: 2021-06-03 Created: 2021-06-03 Last updated: 2022-06-25Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0002-6750-3265

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