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Maximum Shannon Capacity of Photonic Structures

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arxiv 2409.02089 v2 pith:5M6JCVTF submitted 2024-09-03 physics.optics

classification physics.optics
keywords capacityproblemshannoninformationphotonicoptimizationstructuringtransfer
verification ladder T0 review T1 audit T2 compute T3 formal

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Information transfer through electromagnetic waves is an important problem that touches a variety of technologically relevant applications, including computing and telecommunications. Prior attempts to establish limits on optical information transfer have treated waves propagating through known photonic structures (including vacuum). In this article, we address fundamental questions concerning optimal information transfer in photonic devices. Combining information theory, wave scattering, and optimization theory, we formulate bounds on the maximum Shannon capacity that may be achieved by structuring senders, receivers, and their environment. Allowing for arbitrary structuring leads to a non-convex problem that is significantly more difficult than its fixed structure counterpart, which is convex and satisfies a known "water-filling" solution. We derive a geometry-agnostic convex relaxation of the problem that elucidates fundamental physics and scaling behavior of Shannon capacity with respect to device parameters and the importance of structuring for enhancing capacity. We also show that in regimes where communication is dominated by power insertion requirements, bounding Shannon capacity maps to a biconvex optimization problem in the basis of singular vectors of the Green's function. This problem admits analytical solutions that give physically intuitive interpretations of channel and power allocation and reveals how Shannon capacity varies with signal-to-noise ratio. Proof of concept numerical examples show that bounds are within an order of magnitude of achievable device performance and successfully predict the scaling of performance with channel noise. The presented methodologies have implications for the optimization of antennas, integrated photonic devices, metasurface kernels, MIMO space-division multiplexers, and waveguides to maximize communication efficiency and bit-rates.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Indexed singular value bounds on scattering operators: How many channels can a photonic device support?

    physics.optics 2025-10 conditional novelty 7.0 of 10

    A Courant-Fischer-Weyl min-max principle combined with convex relaxations yields computable upper bounds on each individual singular value of the electromagnetic Green operator for arbitrary linear scatterers.

  2. Inferring Structure via Duality for Photonic Inverse Design

    math.OC 2025-04 conditional novelty 7.0 of 10

    The paper derives four minimax-based lemmas about scattering QCQPs and introduces a scrape, contract, and expand protocol that transforms a design problem into a strongly dual form whose solution seeds a near-optimal ...

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