Torna ai risultati
Scheda bibliografica · Consultazione e accesso
Artículo

Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies

Sciara Stefania et al · Wiley · 2021

Materiale supplementare disponibile
Lettura rapida. Controlla i dati essenziali della risorsa e accedi al contenuto con il pulsante principale. La scheda mostra solo le informazioni necessarie per identificare, citare e aprire l’opera.
Pubblicazione seriale

3-D near-field imaging of guided modes in nanophotonic waveguides

Questa pubblicazione seriale contiene 146 contenuti correlati.

Accesso alla risorsa

Apri il contenuto dall’opzione principale o scegli un’altra fonte disponibile.

DOAJ DOAJ Articles
Entrar por DOAJ
Accesso principale

Materiale supplementare disponibile

El enlace apunta a material asociado, anexos, tablas, datos o página complementaria. No se marca como libro/texto completo.
Apri materiale

Riepilogo

Descripción general del contenido del recurso.

Multi-level (qudit) entangled photon states are a key resource for both fundamental physics and advanced applied science, as they can significantly boost the capabilities of novel technologies such as quantum communications, cryptography, sensing, metrology, and computing. The benefits of using photons for advanced applications draw on their unique properties: photons can propagate over long distances while preserving state coherence, and they possess multiple degrees of freedom (such as time and frequency) that allow scalable access to higher dimensional state encoding, all while maintaining low platform footprint and complexity. In the context of out-of-lab use, photon generation and processing through integrated devices and off-the-shelf components are in high demand. Similarly, multi-level entanglement detection must be experimentally practical, i.e., ideally requiring feasible single-qudit projections and high noise tolerance. Here, we focus on multi-level optical Bell and cluster states as a critical resource for quantum technologies, as well as on universal witness operators for their feasible detection and entanglement characterization. Time- and frequency-entangled states are the main platform considered in this context. We review a promising approach for the scalable, cost-effective generation and processing of these states by using integrated quantum frequency combs and fiber-based devices, respectively. We finally report an experimentally practical entanglement identification and characterization technique based on witness operators that is valid for any complex photon state and provides a good compromise between experimental feasibility and noise robustness. The results reported here can pave the way toward boosting the implementation of quantum technologies in integrated and widely accessible photonic platforms.

Come citare

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, S. S. E. (2021). Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies. https://doi.org/10.1515/nanoph-2021-0510

MLA

al, Sciara Stefania et. "Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies." 2021. https://doi.org/10.1515/nanoph-2021-0510.

Chicago

al, Sciara Stefania et. 2021. "Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies.". https://doi.org/10.1515/nanoph-2021-0510.

Harvard

al, S. S. E. 2021, Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies, Wiley, available at: https://doi.org/10.1515/nanoph-2021-0510 [Accessed 7 Aug. 2026].

Condividi e stampa

Salva la scheda, copia il link permanente o stampala in PDF.

Esporta riferimento

Esporta il record nei formati più comuni per usarlo con un gestore bibliografico.

Dettagli della risorsa

Informazioni bibliografiche utili per verificare che sia il materiale corretto.

Titolo
Scalable and effective multi-level entangled photon states: a promising tool to boost quantum technologies
Autore / collaboratori
Sciara Stefania et al
Editore
Wiley
Anno di pubblicazione
2021
ISSN
2192-8614
ISSN
2192-8614
Lingua
Inglés

Soggetti

Esplora risorse correlate a partire da questi soggetti.

Copiato