Tunable quantum emitters on large-scale foundry silicon photonics
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arXiv
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| Main Authors: | , , , , , , , , , , , |
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| Format: | Preprint |
| Published: |
2023
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| _version_ | 1866909728497467392 |
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| author | Larocque, Hugo Buyukkaya, Mustafa Atabey Errando-Herranz, Carlos Harper, Samuel Carolan, Jacques Lee, Chang-Min Richardson, Christopher J. K. Leake, Gerald L. Coleman, Daniel J. Fanto, Michael L. Waks, Edo Englund, Dirk |
| author_facet | Larocque, Hugo Buyukkaya, Mustafa Atabey Errando-Herranz, Carlos Harper, Samuel Carolan, Jacques Lee, Chang-Min Richardson, Christopher J. K. Leake, Gerald L. Coleman, Daniel J. Fanto, Michael L. Waks, Edo Englund, Dirk |
| contents | Controlling large-scale many-body quantum systems at the level of single photons and single atomic systems is a central goal in quantum information science and technology. Intensive research and development has propelled foundry-based silicon-on-insulator photonic integrated circuits to a leading platform for large-scale optical control with individual mode programmability. However, integrating atomic quantum systems with single-emitter tunability remains an open challenge. Here, we overcome this barrier through the hybrid integration of multiple InAs/InP microchiplets containing high-brightness infrared semiconductor quantum dot single photon emitters into advanced silicon-on-insulator photonic integrated circuits fabricated in a 300~mm foundry process. With this platform, we achieve single photon emission via resonance fluorescence and scalable emission wavelength tunability through an electrically controlled non-volatile memory. The combined control of photonic and quantum systems opens the door to programmable quantum information processors manufactured in leading semiconductor foundries. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2306_06460 |
| institution | arXiv |
| publishDate | 2023 |
| record_format | arxiv |
| spellingShingle | Tunable quantum emitters on large-scale foundry silicon photonics Larocque, Hugo Buyukkaya, Mustafa Atabey Errando-Herranz, Carlos Harper, Samuel Carolan, Jacques Lee, Chang-Min Richardson, Christopher J. K. Leake, Gerald L. Coleman, Daniel J. Fanto, Michael L. Waks, Edo Englund, Dirk Optics Quantum Physics Controlling large-scale many-body quantum systems at the level of single photons and single atomic systems is a central goal in quantum information science and technology. Intensive research and development has propelled foundry-based silicon-on-insulator photonic integrated circuits to a leading platform for large-scale optical control with individual mode programmability. However, integrating atomic quantum systems with single-emitter tunability remains an open challenge. Here, we overcome this barrier through the hybrid integration of multiple InAs/InP microchiplets containing high-brightness infrared semiconductor quantum dot single photon emitters into advanced silicon-on-insulator photonic integrated circuits fabricated in a 300~mm foundry process. With this platform, we achieve single photon emission via resonance fluorescence and scalable emission wavelength tunability through an electrically controlled non-volatile memory. The combined control of photonic and quantum systems opens the door to programmable quantum information processors manufactured in leading semiconductor foundries. |
| title | Tunable quantum emitters on large-scale foundry silicon photonics |
| topic | Optics Quantum Physics |
| url | https://arxiv.org/abs/2306.06460 |