Emergent Hawking Radiation and Quantum Sensing in a Quenched Chiral Spin Chain
arXiv:2602.04593 · doi:10.1016/j.physletb.2026.140455
Abstract
We investigate the emergence and detection of Hawking radiation (HR) in a 1D chiral spin chain model, where the gravitational collapse is simulated by a sudden quantum quench that triggers a horizon-inducing phase transition. While our previous work Jaiswal [2025] established that this model mimics BH formation conditions even when the Hoop conjecture is seemingly violated, we here focus on the resulting stationary radiation spectrum and its detectability. By mapping the spin chain dynamics to a Dirac fermion in a curved (1 + 1)-dimensional spacetime, we analyze the radiation using two complementary approaches: field-theoretic modes and operational quantum sensors. First, using localized Gaussian wave packets to model realistic detectors, we find that the radiation spectrum exhibits deviations from the ideal Planckian form, analogous to frequency-dependent greybody factors, while retaining robust Poissonian statistics that signal the loss of formation-scale information. Second, we introduce a qubit coupled to the chain as a stationary Unruh-DeWitt detector. We demonstrate that the qubit functions as a faithful quantum sensor of the Hawking temperature only in the weak-coupling regime, where its population dynamics are governed solely by the bath spectral density. In the strong-coupling limit, the probe thermalizes with the global environment, obscuring the horizon-induced thermal signature. These results provide a clear operational protocol for distinguishing genuine analog HR from environmental noise in quantum simulation platforms.
Version accepted in Physics Letters B. More details added in the main text and supplemental
References in corpus (14)
- Fermions Tunnelling from Black Holes
- Tunnelling, Temperature and Taub-NUT Black Holes
- Observation of self-amplifying Hawking radiation in an analog black hole laser
- Topological Order and Conformal Quantum Critical Points
- A Primer for Black Hole Quantum Physics
- Holographic Evolution of Entanglement Entropy
- Gibbons-Hawking Effect in the Sonic de Sitter Space-Time of an Expanding Bose-Einstein-Condensed Gas
- Chiral Spin-Chain Interfaces Exhibiting Event-Horizon Physics
- Quantum Sensing from Gravity as Universal Dephasing Channel for Qubits
- Quantum Detection of Conicity
- Probing curved spacetime with a distributed atomic processor clock
- Expansion-contraction duality breaking in a Planck-scale sensitive cosmological quantum simulator
- Simulating Hawking radiation in quantum many-body systems: deviations from the thermal spectrum
- Analog charged black hole formation via percolation: Exploring cosmic censorship and Hoop conjecture