Quantum Coherence of Rare-Earth Ions in Heterogeneous Photonic Interfaces

Fuente: arXiv
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Autori principali: Hammer, Henry C., Bukhari, Hassan A., Limbu, Yogendra, Wasick, Brett M., Rouleau, Christopher, Flatté, Michael E., Paudyal, Durga, Candido, Denis R., Uppu, Ravitej
Natura: Preprint
Pubblicazione: 2025
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author Hammer, Henry C.
Bukhari, Hassan A.
Limbu, Yogendra
Wasick, Brett M.
Rouleau, Christopher
Flatté, Michael E.
Paudyal, Durga
Candido, Denis R.
Uppu, Ravitej
author_facet Hammer, Henry C.
Bukhari, Hassan A.
Limbu, Yogendra
Wasick, Brett M.
Rouleau, Christopher
Flatté, Michael E.
Paudyal, Durga
Candido, Denis R.
Uppu, Ravitej
contents Harnessing rare-earth ions in oxides for quantum networks requires integration with bright emitters in III-V semiconductors, but local disorder and interfacial noise limit their optical coherence. Here, we investigate the microscopic origins of the ensemble spectrum in Er$^{3+}$:TiO$_2$ epitaxial thin films on GaAs and GaSb substrates. Ab initio calculations combined with noise-Hamiltonian modeling and Monte Carlo simulations quantify the effects of interfacial and bulk spin noise and local strain on erbium crystal-field energies and inhomogeneous linewidths. Photoluminescence excitation spectroscopy reveals that Er$^{3+}$ ions positioned at increasing distances from the III-V/oxide interface produce a systematic blue shift of the $Y_1\rightarrow Z_1$ transition, consistent with strain relaxation predicted by theory. Thermal annealing produces a compensating redshift and linewidth narrowing, isolating the roles of oxygen-vacancy and gallium-diffusion noise. These results provide microscopic insight into disorder-driven decoherence, offering pathways for precise control of hybrid quantum systems for scalable quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2511_19668
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Coherence of Rare-Earth Ions in Heterogeneous Photonic Interfaces
Hammer, Henry C.
Bukhari, Hassan A.
Limbu, Yogendra
Wasick, Brett M.
Rouleau, Christopher
Flatté, Michael E.
Paudyal, Durga
Candido, Denis R.
Uppu, Ravitej
Quantum Physics
Optics
Harnessing rare-earth ions in oxides for quantum networks requires integration with bright emitters in III-V semiconductors, but local disorder and interfacial noise limit their optical coherence. Here, we investigate the microscopic origins of the ensemble spectrum in Er$^{3+}$:TiO$_2$ epitaxial thin films on GaAs and GaSb substrates. Ab initio calculations combined with noise-Hamiltonian modeling and Monte Carlo simulations quantify the effects of interfacial and bulk spin noise and local strain on erbium crystal-field energies and inhomogeneous linewidths. Photoluminescence excitation spectroscopy reveals that Er$^{3+}$ ions positioned at increasing distances from the III-V/oxide interface produce a systematic blue shift of the $Y_1\rightarrow Z_1$ transition, consistent with strain relaxation predicted by theory. Thermal annealing produces a compensating redshift and linewidth narrowing, isolating the roles of oxygen-vacancy and gallium-diffusion noise. These results provide microscopic insight into disorder-driven decoherence, offering pathways for precise control of hybrid quantum systems for scalable quantum technologies.
title Quantum Coherence of Rare-Earth Ions in Heterogeneous Photonic Interfaces
topic Quantum Physics
Optics
url https://arxiv.org/abs/2511.19668