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Trapped Ion Quantum Computing

Quantum-Optically Resolving the Number of Colloidal Quantum Dots in a Subwavelength Volume

arXiv
Authors: Zhi-Bo Ni, Jia-Wang Yu, Jiong-Zhao Li, Xiao-Tian Cheng, Mei-Na Jiang, Zi-Xuan Song, Xiao-Qing Zhou, Wei Fang, Chen-Hui Li, Feng Liu, Xing Lin, Chao-Yuan Jin

Year

2026

Paper ID

15616

Status

Preprint

Abstract Read

~2 min

Abstract Words

145

Citations

N/A

Abstract

The number resolution of solid-state artificial atoms is of fundamental interest for the study of quantum few-body systems, yet remains experimentally challenging. Quantum optical experiments offer a non-invasive approach which links up macroscopic measurements with the quantity of quantum emitters. In this work, we propose a time-domain quantum optical methodology for the strict numbering of colloidal CdSe/CdS/ZnS quantum dots (QDs) confined in subwavelength-size polystyrene capsules. The non-polarized, homogeneously broadened emission of colloidal QDs in the subwavelength volume satisfies the description of Dicke's superradiance of identical quantum emitters. An analytic relation describes the numerical dependence of the second-order photon correlation on the number and the collective lifetime of emitters, yielding an experimental counting range of colloidal QDs from one to ten. This work provides a robust pathway for the non-invasive numbering of artificial atoms and the investigation of collective light-matter interactions at the nanoscale.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • The number resolution of solid-state artificial atoms is of fundamental interest for the study of quantum few-body systems, yet remains experimentally challenging.

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