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Gibeom Son

Publications and source records attributed to Gibeom Son.

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Room-temperature amplified transduction of infrared to visible photons

Frequency transduction, which converts photons from one energy level to another, provides a way to bridge different quantum devices. The frequency transduction has been studied across various systems and frequency ranges, depending on the applications. In particular, infrared photons are ideal for long-distance communication, but their detection efficiency is often low. Converting infrared photons to visible light, where affordable detectors with high quantum efficiency are widely available, would offer significant advantages. Here, we report an experimental demonstration of transduction of 1500-nm photons to 553-nm photons at room temperature using barium atoms of a three-level $Λ$ system. In our experiment conducted in free space, we could amplify the visible photons, achieving an internal efficiency of 1.49, exceeding unity. We also observed that the minimum transduction bandwidth is determined by the total decay rate of the excited state in the $Λ$-type energy levels. Moreover, we propose ways to improve the internal efficiency by 200-fold and to implement polarization-sensitive transduction in our scheme to be applicable in quantum information. The present work is a step forward for the integration of quantum devices at different energy levels as well as for the development of efficient infrared-photon detectors.

quant-ph

Realization of superabsorption by time reversal of superradiance

Emission and absorption of light lie at the heart of light-matter interaction. Although emission and absorption rates are regarded as intrinsic properties of atoms and molecules, various ways to modify these rates have been sought in applications such as quantum information processing, metrology and light-energy harvesting. One promising approach is to utilize collective behaviour of emitters in the same way as in superradiance5. Although superradiance has been observed in diverse systems, its conceptual counterpart in absorption has never been realized11 until now. Here we demonstrate enhanced cooperative absorption - superabsorption - by implementing a time-reversal process of superradiance. The observed superabsorption rate is much higher than that of ordinary absorption, with the number of absorbed photons scaling with the square of the number of atoms, exhibiting the cooperative nature of superabsorption. The present superabsorption - which performs beyond the limitations of conventional absorption - can facilitate weak-signal sensing, light-energy harvesting and light-matter quantum interfaces

quant-ph