Experimental protocol for observing single quantum many-body scars with transmon qubits
arXiv:2410.14613 · doi:10.21468/SciPostPhys.20.2.036
Abstract
Quantum many-body scars are energy eigenstates which fail to reproduce thermal expectation values of local observables, in systems where the rest of the many-body spectrum fulfils eigenstate thermalization. Experimental observation of quantum many-body scars has so far been limited to models with multiple scar states evenly spaced in energy. It is thus an interesting question whether even single isolated scars, which theoretically embody the weakest possibile violation of eigenstate thermalization and may be thought to have no detectable impact in experiments, can leave a trace in measurable quantities. Moreover, single scars offer an interesting scenario for exploring the connection between quantum many-body scars and the original notion of scarring in quantum dynamical systems theory. Here we propose protocols to observe single scars in architectures of fixed-frequency, fixed-coupling superconducting qubits. We first adapt known models possessing the desired features into a form particularly suited for the experimental platform. We develop protocols for the implementation of these models, through trotterized sequences of two-qubit cross-resonance interactions, and verify the existence of the approximate scar state in the stroboscopic effective Hamiltonian. Since a single scar cannot be detected from coherent revivals in the dynamics, differently from towers of scar states, we propose and numerically investigate alternative and experimentally-accessible signatures. These include the dynamical response of the scar to local state deformations, to controlled noise, and to the resolution of the Lie-Suzuki-Trotter digitization.
17 pages, 7 figures
References in corpus (52)
- Probing many-body dynamics on a 51-atom quantum simulator
- Many body localization and thermalization in quantum statistical mechanics
- From Quantum Chaos and Eigenstate Thermalization to Statistical Mechanics and Thermodynamics
- Circuit Quantum Electrodynamics
- A Quantum Engineer's Guide to Superconducting Qubits
- Many-body localization, thermalization, and entanglement
- Universal High-Frequency Behavior of Periodically Driven Systems: from Dynamical Stabilization to Floquet Engineering
- Quantum thermalization through entanglement in an isolated many-body system
- Equilibration, thermalisation, and the emergence of statistical mechanics in closed quantum systems
- Quantum many-body scars
- Extending the computational reach of a noisy superconducting quantum processor
- Periodically-driven quantum systems: Effective Hamiltonians and engineered gauge fields
- High-frequency approximation for periodically driven quantum systems from a Floquet-space perspective
- Many-body localization: an introduction and selected topics
- Probing entanglement entropy via randomized measurements
- Efficient Z-Gates for Quantum Computing
- Quantum Many-Body Scars and Weak Breaking of Ergodicity
- Procedure for systematically tuning up crosstalk in the cross resonance gate
- Quantum Many-Body Scars and Hilbert Space Fragmentation: A Review of Exact Results
- Ergodicity-breaking arising from Hilbert space fragmentation in dipole-conserving Hamiltonians
- Systematic Construction of Counterexamples to the Eigenstate Thermalization Hypothesis
- Rényi Entropies from Random Quenches in Atomic Hubbard and Spin Models
- Quantum Many-Body Scars: A Quasiparticle Perspective
- Genuine 12-qubit entanglement on a superconducting quantum processor
- Distinguishing localization from chaos: challenges in finite-size systems
- Effective Hamiltonian models of the cross-resonance gate
- Quantum computing with Qiskit
- Microwave-induced coupling of superconducting qubits
- Eta-Pairing in Hubbard Models: From Spectrum Generating Algebras to Quantum Many-Body Scars
- The power of random measurements: measuring Tr(ρ^n) on single copies of ρ
- Quantum phase transitions in matrix product systems
- First-principles analysis of cross-resonance gate operation
- Many-Body Localization in the Age of Classical Computing
- 16-qubit IBM universal quantum computer can be fully entangled
- Large Classes of Quantum Scarred Hamiltonians from Matrix Product States
- Exact three-colored quantum scars from geometric frustration
- Many-body Hilbert space scarring on a superconducting processor
- Topological many-body scar states in dimensions 1, 2, and 3
- Creating quantum many-body scars through topological pumping of a 1D dipolar gas
- Robust quantum sensing in strongly interacting systems with many-body scars
- Entanglement enhanced metrology with quantum many-body scars
- Quantum simulation of three-body interactions in weakly driven quantum systems
- Quantum Information Scrambling in Quantum Many-body Scarred Systems
- Quantum many-body scars with chiral topological order in 2D and critical properties in 1D
- Matrix Product State Representations
- Native two-qubit gates in fixed-coupling, fixed-frequency transmons beyond cross-resonance interaction
- Realizing topologically ordered states on a quantum processor
- Motif magnetism and quantum many-body scars
- Non-perturbative Floquet engineering of the toric-code Hamiltonian and its ground state
- Adiabatic time evolution of highly excited states
- Phase Transitions in Quantum Many-Body Scars
- Variational Quantum Gate Optimization at the Pulse Level