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Light-harvesting with guide-slide superabsorbing condensed-matter nanostructures

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arxiv 1803.08036 v3 pith:6G6RKKIU submitted 2018-03-21 quant-ph

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keywords condensed-matterdipoleguide-slidelight-harvestingnanostructuressuperabsorbingsystemabsorber
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We establish design principles for light-harvesting antennae whose energy capture scales superlinearly with system size. Controlling the absorber dipole orientations produces sets of `guide-slide' states which promote steady-state superabsorbing characteristics in noisy condensed-matter nanostructures. Inspired by natural photosynthetic complexes, we discuss the example of ring-like dipole arrangements and show that, in our setup, vibrational relaxation enhances rather than impedes performance. Remarkably, the superabsorption effect proves robust to O(5%) disorder simultaneously for all relevant system parameters, showing promise for experimental exploration across a broad range of platforms.

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Cited by 1 Pith paper

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

  1. Thermodynamics from indistinguishability: mitigating and amplifying the effects of the bath

    quant-ph 2019-08 conditional novelty 6.0 of 10

    Collective bath coupling lets spin ensembles reach non-thermal steady states whose energy, entropy, and free-energy changes are mitigated or amplified, with entropy production reduced by up to a factor of the ensemble size.

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