Bio-inspired natural sunlight-pumped lasers
Francesco Mattiotti, William M. Brown, Nicola Piovella, Stefano, Olivares, Erik M. Gauger, G. Luca Celardo

TL;DR
This paper proposes a bio-inspired, sunlight-pumped laser design using photosynthetic molecular complexes to achieve lasing under natural sunlight, offering a new approach to harness solar energy coherently.
Contribution
It introduces a novel bio-inspired laser medium combining photosynthetic complexes with engineered molecular dimers for efficient sunlight-to-laser conversion.
Findings
Photosynthetic complexes can efficiently harvest dilute sunlight.
The hybrid structure can reach population inversion under natural sunlight.
The design offers a new pathway for sunlight-pumped lasers.
Abstract
Even though sunlight is by far the most abundant renewable energy source available to humanity, its dilute and variable nature has kept efficient ways to collect, store, and distribute this energy tantalisingly out of reach. Turning the incoherent energy supply provided by the Sun into a coherent laser beam would overcome several of the practical limitations inherent in using sunlight as a source of clean energy: laser beams travel nearly losslessly over large distances, and they are effective at driving chemical reactions which convert sunlight into chemical energy. Here we propose a bio-inspired blueprint for a novel type of laser with the aim of upgrading unconcentrated natural sunlight into a coherent laser beam. Our proposed design constitutes a novel and different path towards sunlight-pumped lasers. In order to achieve lasing with the extremely dilute power provided by natural…
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Taxonomy
TopicsPhotosynthetic Processes and Mechanisms · Spectroscopy and Quantum Chemical Studies · Photoreceptor and optogenetics research
