Measurement resolution enhanced coherence for lattice fermions
arXiv:2409.09878 · doi:10.1103/PhysRevResearch.7.013206
Abstract
Weak measurement enables the extraction of targeted information from a quantum system while minimizing decoherence due to measurement backaction. However, in many-body quantum systems backaction can have unexpected effects on wavefunction collapse. We theoretically study a minimal many-particle model consisting of weakly measured non-interacting fermions in a one dimensional lattice. Repeated measurement of on-site occupation number with single-site resolution stochastically drives the system toward a Fock state, regardless of the initial state. This need not be the case for measurements that do not, even in principle, have single-site spatial resolution. We numerically show for systems with up to 16 sites that decreasing the spatial resolution strongly affects both the rate of stochastic evolution for each quantum trajectory and the allowed final states. The full Hilbert space can be partitioned into backaction-free subspaces (BFSs) the elements of which are indistinguishable to these measurements. Repeated measurements will drive any initial state into a single BFS, leading to a steady state that is a fixed point of the measurement process. We exactly calculate the properties of these BFSs for systems up to 32 sites and find that even for moderate reductions in measurement resolution they yield non-trivial steady state entanglement and coherence.
Published version
References in corpus (31)
- Anderson Transitions
- Theory of ultracold Fermi gases
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- Measurement-based quantum computation
- Measurement-Induced Phase Transitions in the Dynamics of Entanglement
- Fermionic atoms in a 3D optical lattice: Observing Fermi-surfaces, dynamics and interactions
- A Straightforward Introduction to Continuous Quantum Measurement
- Quantum Many-Body Scars and Hilbert Space Fragmentation: A Review of Exact Results
- Ergodicity-breaking arising from Hilbert space fragmentation in dipole-conserving Hamiltonians
- Observation of Phase Separation in a Strongly-Interacting Imbalanced Fermi Gas
- Confinement induced molecules in a 1D Fermi gas
- Dynamical purification phase transitions induced by quantum measurements
- Entanglement transition in a monitored free fermion chain -- from extended criticality to area law
- Entanglement in a fermion chain under continuous monitoring
- Entanglement phase transitions in measurement-only dynamics
- Measurement-induced topological entanglement transitions in symmetric random quantum circuits
- Tomographic RF Spectroscopy of a Trapped Fermi Gas at Unitarity
- Entanglement and charge-sharpening transitions in U(1) symmetric monitored quantum circuits
- Entanglement Transition in the Projective Transverse Field Ising Model
- Emergent conformal symmetry in non-unitary random dynamics of free fermions
- Making, probing and understanding Bose-Einstein condensates
- Insulating Behavior of a Trapped Ideal Fermi Gas
- Simulation of complex dynamics of mean-field -spin models using measurement-based quantum feedback control
- Phase transitions in sequential weak measurements
- Stirring by Staring: Measurement Induced Chirality
- Spontaneous symmetry breaking induced by quantum monitoring
- Cooling and state preparation in an optical lattice via Markovian feedback control
- Measurement induced dynamics and stabilization of spinor condensate domain walls
- Feedback Induced Magnetic Phases in Binary Bose-Einstein Condensates
- Feedback cooled Bose-Einstein condensation: near and far from equilibrium
- Quantum Back-action Limits in Dispersively Measured Bose-Einstein Condensates