Strain-Enhanced Coherence in Curved hBN Quantum Emitters

Fuente: arXiv
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Main Authors: Shoham, Eyal, Nandi, Sukanta, Teitelboim, Ayelet, Jose, Jeny, Atar, Gil, Lewi, Ashwin Ramasubramaniam Tomer, Naveh, Doron
Format: Preprint
Published: 2026
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author Shoham, Eyal
Nandi, Sukanta
Teitelboim, Ayelet
Jose, Jeny
Atar, Gil
Lewi, Ashwin Ramasubramaniam Tomer
Naveh, Doron
author_facet Shoham, Eyal
Nandi, Sukanta
Teitelboim, Ayelet
Jose, Jeny
Atar, Gil
Lewi, Ashwin Ramasubramaniam Tomer
Naveh, Doron
contents Hexagonal boron nitride (hBN) hosts robust room-temperature single-photon emitters, yet their coherence is typically limited by phonon induced dephasing and spectral broadening. Here, we show that thermally induced curvature in bulk like hBN flakes provides a strain enabled route to suppress defect phonon coupling under ambient conditions. Nanoscale bubbles formed by thermal processing generate strong through thickness strain gradients, which we directly probe by infrared nano spectroscopy. These measurements reveal strain induced splitting of in-plane phonon modes, evidencing a substantial local modification of the phonon density of states. Quantum emitters localized within these curved regions exhibit markedly enhanced room temperature spectral purity, with Debye Waller factors of 0.91 and narrower line widths than emitters in flat regions. Photon correlation measurements confirm high-purity single photon emission at room temperature. Supported by first-principles calculations, we attribute this behavior to strain driven phonon redistribution, which depletes phonons in tensile regions and accumulates them in compressive regions, thereby creating locally phonon suppressed environments for defect emitters. These results establish strain engineering as an effective route for phonon control in hBN and open a pathway toward high coherence, room-temperature quantum light sources for integrated nano photonic platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2605_10336
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Strain-Enhanced Coherence in Curved hBN Quantum Emitters
Shoham, Eyal
Nandi, Sukanta
Teitelboim, Ayelet
Jose, Jeny
Atar, Gil
Lewi, Ashwin Ramasubramaniam Tomer
Naveh, Doron
Materials Science
Hexagonal boron nitride (hBN) hosts robust room-temperature single-photon emitters, yet their coherence is typically limited by phonon induced dephasing and spectral broadening. Here, we show that thermally induced curvature in bulk like hBN flakes provides a strain enabled route to suppress defect phonon coupling under ambient conditions. Nanoscale bubbles formed by thermal processing generate strong through thickness strain gradients, which we directly probe by infrared nano spectroscopy. These measurements reveal strain induced splitting of in-plane phonon modes, evidencing a substantial local modification of the phonon density of states. Quantum emitters localized within these curved regions exhibit markedly enhanced room temperature spectral purity, with Debye Waller factors of 0.91 and narrower line widths than emitters in flat regions. Photon correlation measurements confirm high-purity single photon emission at room temperature. Supported by first-principles calculations, we attribute this behavior to strain driven phonon redistribution, which depletes phonons in tensile regions and accumulates them in compressive regions, thereby creating locally phonon suppressed environments for defect emitters. These results establish strain engineering as an effective route for phonon control in hBN and open a pathway toward high coherence, room-temperature quantum light sources for integrated nano photonic platforms.
title Strain-Enhanced Coherence in Curved hBN Quantum Emitters
topic Materials Science
url https://arxiv.org/abs/2605.10336