Trion quantum coherence in site-controlled pyramidal InGaAs quantum dots

Fuente: arXiv
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Main Authors: Barcan, R. A., Samaras, I., Barr, K., Juska, G., Pelucchi, E., Lagoudakis, K. G.
Format: Preprint
Published: 2025
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author Barcan, R. A.
Samaras, I.
Barr, K.
Juska, G.
Pelucchi, E.
Lagoudakis, K. G.
author_facet Barcan, R. A.
Samaras, I.
Barr, K.
Juska, G.
Pelucchi, E.
Lagoudakis, K. G.
contents Deterministically positioned pyramidal InGaAs quantum dots (QDs) exhibit exceptional quantum properties, making them highly promising candidates for scalable on-chip quantum information processing. In this work, we investigate the coherent dynamics of positively charged excitons under the influence of strong magnetic fields in the Faraday configuration. Pyramidal quantum dots exhibit a fourfold splitting of the charged excitons even in the Faraday configuration, giving rise to an optically addressable double-LambdaΛ system akin to self-assembled quantum dots in oblique magnetic fields. Here, we investigate ultrafast complete coherent control of the trion to ground state transition utilizing advanced optical resonant excitation techniques and we observe quantum coherence over timescales that are similar to other prominent quantum dot platforms. These results pave the way towards establishing site-controlled pyramidal InGaAs QDs as scalable platforms for quantum information processing, expanding the reach of coherent control to new quantum systems.
format Preprint
id arxiv_https___arxiv_org_abs_2506_20339
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Trion quantum coherence in site-controlled pyramidal InGaAs quantum dots
Barcan, R. A.
Samaras, I.
Barr, K.
Juska, G.
Pelucchi, E.
Lagoudakis, K. G.
Quantum Physics
Mesoscale and Nanoscale Physics
Deterministically positioned pyramidal InGaAs quantum dots (QDs) exhibit exceptional quantum properties, making them highly promising candidates for scalable on-chip quantum information processing. In this work, we investigate the coherent dynamics of positively charged excitons under the influence of strong magnetic fields in the Faraday configuration. Pyramidal quantum dots exhibit a fourfold splitting of the charged excitons even in the Faraday configuration, giving rise to an optically addressable double-LambdaΛ system akin to self-assembled quantum dots in oblique magnetic fields. Here, we investigate ultrafast complete coherent control of the trion to ground state transition utilizing advanced optical resonant excitation techniques and we observe quantum coherence over timescales that are similar to other prominent quantum dot platforms. These results pave the way towards establishing site-controlled pyramidal InGaAs QDs as scalable platforms for quantum information processing, expanding the reach of coherent control to new quantum systems.
title Trion quantum coherence in site-controlled pyramidal InGaAs quantum dots
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.20339