Zobrazeno 1 - 10
of 52
pro vyhledávání: '"Weaver, Matthew J."'
Autor:
Herrmann, Yanik, Fischer, Julius, Scheijen, Stijn, Wolfs, Cornelis F. J., Brevoord, Julia M., Sauerzapf, Colin, Wienhoven, Leonardo G. C., Feije, Laurens J., Eschen, Martin, Ruf, Maximilian, Weaver, Matthew J., Hanson, Ronald
Open microcavities offer great potential for the exploration and utilization of efficient spin-photon interfaces with Purcell-enhanced quantum emitters thanks to their large spectral and spatial tunability combined with high versatility of sample int
Externí odkaz:
http://arxiv.org/abs/2409.01857
Autor:
Iuliano, Mariagrazia, Slater, Marie-Christine, Stolk, Arian J., Weaver, Matthew J., Chakraborty, Tanmoy, Loukiantchenko, Elsie, Amaral, Gustavo Castro do, Alfasi, Nir, Sholkina, Mariya O., Tittel, Wolfgang, Hanson, Ronald
We report on a quantum interface linking a diamond NV center quantum network node and 795nm photonic time-bin qubits compatible with Thulium and Rubidium quantum memories. The interface makes use of two-stage low-noise quantum frequency conversion an
Externí odkaz:
http://arxiv.org/abs/2403.18581
Autor:
Herrmann, Yanik, Fischer, Julius, Brevoord, Julia M., Sauerzapf, Colin, Wienhoven, Leonardo G. C., Feije, Laurens J., Pasini, Matteo, Eschen, Martin, Ruf, Maximilian, Weaver, Matthew J., Hanson, Ronald
Publikováno v:
Phys. Rev. X 14, 041013 (2024)
Efficient coupling of optically active qubits to optical cavities is a key challenge for solid-state-based quantum optics experiments and future quantum technologies. Here we present a quantum photonic interface based on a single Tin-Vacancy center i
Externí odkaz:
http://arxiv.org/abs/2311.08456
Autor:
Weaver, Matthew J., Duivestein, Pim, Bernasconi, Alexandra C., Scharmer, Selim, Lemang, Mathilde, van Thiel, Thierry C., Hijazi, Frederick, Hensen, Bas, Gröblacher, Simon, Stockill, Robert
Publikováno v:
Nat. Nanotechnol. 19, 166-172 (2024)
Microwave-to-optics transduction is emerging as a vital technology for scaling quantum computers and quantum networks. To establish useful entanglement links between qubit processing units, several key conditions have to be simultaneously met: the tr
Externí odkaz:
http://arxiv.org/abs/2210.15702
Publikováno v:
Phys. Rev. Applied 15, 024049 (2021)
The nitrogen-vacancy (NV) center in diamond has been established as a prime building block for quantum networks. However, scaling beyond a few network nodes is currently limited by low spin-photon entanglement rates, resulting from the NV center's lo
Externí odkaz:
http://arxiv.org/abs/2009.08204
Akademický článek
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Publikováno v:
Phys. Rev. A 97, 063832 (2018)
Experimental observation of the decoherence of macroscopic objects is of fundamental importance to the study of quantum collapse models and the quantum to classical transition. Optomechanics is a promising field for the study of such models because o
Externí odkaz:
http://arxiv.org/abs/1802.08399
Autor:
Duncan, Nathan S., Campbell, Michael J., Backos, Donald S., Li, Chun, Rider, Kevin C., Stump, Sascha, Weaver, Matthew J., Gajewski, Mariusz P., Beall, Howard D., Reigan, Philip, Natale, Nicholas R.
Publikováno v:
In Bioorganic & Medicinal Chemistry 1 September 2022 69
Autor:
Weaver, Matthew J., Buters, Frank M., Luna, Fernando, Eerkens, Hedwig J., Heeck, Kier, de Man, Sven, Bouwmeester, Dirk
Publikováno v:
Nature Communications 8, 824 (2017)
Hybrid quantum systems have been developed with various mechanical, optical and microwave harmonic oscillators. The coupling produces a rich library of interactions including two mode squeezing, swapping interactions, back-action evasion and thermal
Externí odkaz:
http://arxiv.org/abs/1704.02394
Autor:
Buters, Frank M., Heeck, Kier, Eerkens, Hedwig J., Weaver, Matthew J., Luna, Fernando, de Man, Sven, Bouwmeester, Dirk
Experiments involving micro- and nanomechanical resonators need to be carefully designed to reduce mechanical environmental noise. A small scale on-chip approach is to add an additional resonator to the system as a mechanical low-pass filter. Unfortu
Externí odkaz:
http://arxiv.org/abs/1701.04212