Signatures of Many-Particle Interference
arXiv:1908.08370 · doi:10.1088/1361-6455/ab5c30
Abstract
This Tutorial will introduce the mathematical framework for describing systems of identical particles, and explain the notion of indistinguishability. We will then focus our attention on dynamical systems of free particles and formally introduce the concept of many-particle interference. Its impact on many-particle transition probabilities is computationally challenging to evaluate, and it becomes rapidly intractable for systems with large numbers of identical particles. Hence, this Tutorial will build up towards alternative, more efficient methods for observing signatures of many-particle interference. A first type of signatures relies on the detection of a highly sensitive -but also highly fragile-processes of total destructive interference that occurs in interferometers with a high degree of symmetry. A second class of signatures is based on the statistical features that arise when we study the typical behaviour of correlations between a small number of the interferometer's output ports. We will ultimately show how these statistical signatures of many-particle interference lead us to a statistical version of the Hong-Ou-Mandel effect.
Tutorial / Pedagogical review; 67 pages, 11 figures
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Cited by in corpus (12)
- Non-Gaussian Quantum States and Where to Find Them
- Efficient verification of Boson Sampling
- Relativistic frame-dragging and the Hong-Ou-Mandel dip a primitive to gravitational effects in multi-photon quantum-interference
- Local versus Global Two-Photon Interference in Quantum Networks
- Symmetry allows for distinguishability in totally destructive many-particle interference
- Characterizing four-body indistinguishability via symmetries
- Efficient validation of Boson Sampling from binned photon-number distributions
- BosonSampling.jl: A Julia package for quantum multi-photon interferometry
- Indistinguishability of identical bosons from a quantum information theory perspective
- All-order momentum correlations of three ultracold bosonic atoms confined in triple-well traps: Signatures of emergent many-body quantum phase transitions and analogies with three-photon quantum-optics interference
- Propagation of two-particle correlations across the chaotic phase for interacting bosons
- Validating multi-photon quantum interference with finite data