Selective Biexciton Generation under Energy-Time Entangled Quantum Light in Quantum Dots

Abstract Quantum light provides opportunities for controlling multiphoton absorption beyond the classical limits. Here, we investigate biexciton generation in nanocrystal quantum dots driven by energy-time-entangled photon pairs generated via spontaneous parametric downconversion. We show that frequency–time correlations between pairs of photons increase the population of biexcitons over excitons, thereby lending specificity to the excitation of many-body states. By employing a three-level model, we demonstrate that biexciton generation depends nontrivially on the photon entanglement time and pump bandwidth. We find that maximizing efficiency requires an optimally shaped entangled photon field rather than simply scaling parameters for a monotonic improvement. Extending to a realistic CdSe/CdS core–shell quantum dot containing many excitonic states coupled to the quantum field, we demonstrate that increasing the biphoton arrival-time entanglement (closer arrival time) enhances constructive pathway interference and expands accessible excitation channels while preserving better energy-conservation in excitation than classical light when generating biexcitons. Furthermore, tuning the time-correlation properties enables selective excitation of closely spaced biexciton states. These results establish entangled photons as tools for selective excitation and control of higher-order excited states in quantum-confined systems.

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Publication Details

Journal
ACS Nano
Published
2026-10-08
DOI
https://doi.org/10.1021/acsnano.6c10075
Primary Topic
Semiconductor Quantum Structures and Devices
Type
article
Field-Weighted Citation Impact
0.00

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article

Selective Biexciton Generation under Energy-Time Entangled Quantum Light in Quantum Dots

Hendrik Utzat, Eran Rabani, Kaiyue Peng, Chieh Tsao
ACS Nano
Semiconductor Quantum Structures and Devices
article

Selective Biexciton Generation under Energy-Time Entangled Quantum Light in Quantum Dots

Hendrik Utzat, Eran Rabani, Kaiyue Peng, Chieh Tsao
article en

Abstract

Abstract Quantum light provides opportunities for controlling multiphoton absorption beyond the classical limits. Here, we investigate biexciton generation in nanocrystal quantum dots driven by energy-time-entangled photon pairs generated via spontaneous parametric downconversion. We show that frequency–time correlations between pairs of photons increase the population of biexcitons over excitons, thereby lending specificity to the excitation of many-body states. By employing a three-level model, we demonstrate that biexciton generation depends nontrivially on the photon entanglement time and pump bandwidth. We find that maximizing efficiency requires an optimally shaped entangled photon field rather than simply scaling parameters for a monotonic improvement. Extending to a realistic CdSe/CdS core–shell quantum dot containing many excitonic states coupled to the quantum field, we demonstrate that increasing the biphoton arrival-time entanglement (closer arrival time) enhances constructive pathway interference and expands accessible excitation channels while preserving better energy-conservation in excitation than classical light when generating biexcitons. Furthermore, tuning the time-correlation properties enables selective excitation of closely spaced biexciton states. These results establish entangled photons as tools for selective excitation and control of higher-order excited states in quantum-confined systems.

ACS Nano
Lawrence Berkeley National Laboratory (US), Hebrew University of Jerusalem (IL)
National Science Foundation, U.S. Department of Energy, National Energy Research Scientific Computing Center, Office of Science, Division of Materials Research, Division of Chemistry
Openalex Percentile: Top 62%
Semiconductor Quantum Structures and Devices
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Selective Biexciton Generation under Energy-Time Entangled Quantum Light in Quantum Dots — Hendrik Utzat, Eran Rabani, et al. · ACS Nano (2026) | TGRS Research Map | TGRS