Stern-Gerlach Interferometers with Dual Sensing: Probing Recoherence and Lifecycles of Islands of Coherence
Xing M. Wang

TL;DR
This paper proposes a novel interpretation of quantum measurement involving Islands of Coherence, and introduces a dual-sensing Stern-Gerlach interferometer to experimentally probe the lifecycle and transitions of these coherence islands.
Contribution
It advances the Branched Hilbert Subspace Interpretation by designing an interferometer to test IOC transitions and conceptualizes the lifecycle of coherence islands in quantum systems.
Findings
Proposed a three-stage dual-sensing Stern-Gerlach interferometer.
Identified signatures of uncommitted timing events and recoherence.
Drawn analogies between IOC boundaries and quantum field theory models.
Abstract
The Branched Hilbert Subspace Interpretation (BHSI) addresses the quantum measurement problem by preserving unitary quantum evolution within a single world. Its central concept is the Island of Coherence (IOC), an operationally isolated, inseparable quantum system mathematically described by a Local Hilbert Space (LHS), which carries no intrinsic spacetime metric and coexists with the spacetime in which the IOC is embedded, a dual structure implicated by the first quantization. This paper advances BHSI on both experimental and conceptual frontiers. Experimentally, we propose a three-stage dual-sensing Stern-Gerlach interferometer (SGI) designed to probe the fuzzy spatiotemporal boundaries associated with IOC transitions. Stage 1 targets uncommitted timing events, manifested as sensor-detector mismatches; Stage 2 investigates conditional recoherence, a signature of local, time-extended…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
