Acoustic phonon phase gates with number-resolving phonon detection

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Qiao, Hong, Wang, Zhaoyou, Andersson, Gustav, Anferov, Alexander, Conner, Christopher R., Joshi, Yash J., Li, Shiheng, Miller, Jacob M., Wu, Xuntao, Yan, Haoxiong, Jiang, Liang, Cleland, Andrew N.
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866915183348154368
author Qiao, Hong
Wang, Zhaoyou
Andersson, Gustav
Anferov, Alexander
Conner, Christopher R.
Joshi, Yash J.
Li, Shiheng
Miller, Jacob M.
Wu, Xuntao
Yan, Haoxiong
Jiang, Liang
Cleland, Andrew N.
author_facet Qiao, Hong
Wang, Zhaoyou
Andersson, Gustav
Anferov, Alexander
Conner, Christopher R.
Joshi, Yash J.
Li, Shiheng
Miller, Jacob M.
Wu, Xuntao
Yan, Haoxiong
Jiang, Liang
Cleland, Andrew N.
contents Linear optical quantum computing (LOQC) provides a compelling approach to quantum information processing, with a short list of physical requirements; however, experimental implementations have faced significant challenges. Itinerant phonons in quantum acoustics, combined with superconducting qubits, offer a compelling alternative to the quantum optics approach. Here we demonstrate key advances in the ability to manipulate and measure acoustic phonon quantum states: First, we demonstrate deterministic phase control of itinerant one- and two-phonon qubit states, measured using an acoustic Mach-Zehnder interferometer. We implement phonon phase control using the frequency-dependent scattering of phonon states from a superconducting transmon qubit. The acoustic interferometer used to measure the resulting phonon phase achieves a noise-floor-limited Hong-Ou-Mandel (HOM) interference visibility of 98.1%, representing a significant improvement over our previous demonstration. Additionally, we propose and implement a multi-phonon detection scheme that enables coherent conversion between itinerant one- and two-phonon Fock states and transmon qutrit states, transforming for example the Hong-Ou-Mandel two-phonon entangled output state $|02\rangle - |20\rangle$ into the entangled state of two transmons. The tight integration of quantum acoustics with superconducting circuits native to our implementation promises further advances, including deterministic phonon quantum gates with direct applications to quantum computing.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03898
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Acoustic phonon phase gates with number-resolving phonon detection
Qiao, Hong
Wang, Zhaoyou
Andersson, Gustav
Anferov, Alexander
Conner, Christopher R.
Joshi, Yash J.
Li, Shiheng
Miller, Jacob M.
Wu, Xuntao
Yan, Haoxiong
Jiang, Liang
Cleland, Andrew N.
Quantum Physics
Optics
Linear optical quantum computing (LOQC) provides a compelling approach to quantum information processing, with a short list of physical requirements; however, experimental implementations have faced significant challenges. Itinerant phonons in quantum acoustics, combined with superconducting qubits, offer a compelling alternative to the quantum optics approach. Here we demonstrate key advances in the ability to manipulate and measure acoustic phonon quantum states: First, we demonstrate deterministic phase control of itinerant one- and two-phonon qubit states, measured using an acoustic Mach-Zehnder interferometer. We implement phonon phase control using the frequency-dependent scattering of phonon states from a superconducting transmon qubit. The acoustic interferometer used to measure the resulting phonon phase achieves a noise-floor-limited Hong-Ou-Mandel (HOM) interference visibility of 98.1%, representing a significant improvement over our previous demonstration. Additionally, we propose and implement a multi-phonon detection scheme that enables coherent conversion between itinerant one- and two-phonon Fock states and transmon qutrit states, transforming for example the Hong-Ou-Mandel two-phonon entangled output state $|02\rangle - |20\rangle$ into the entangled state of two transmons. The tight integration of quantum acoustics with superconducting circuits native to our implementation promises further advances, including deterministic phonon quantum gates with direct applications to quantum computing.
title Acoustic phonon phase gates with number-resolving phonon detection
topic Quantum Physics
Optics
url https://arxiv.org/abs/2503.03898