All-photonic quantum teleportation and entanglement swapping using on-demand solid-state quantum emitters

Author(s):  
D. Tedeschi ◽  
F. Basso Basset ◽  
M. B. Rota ◽  
C. Schimpf ◽  
M. Reindl ◽  
...  
2018 ◽  
Vol 4 (12) ◽  
pp. eaau1255 ◽  
Author(s):  
Marcus Reindl ◽  
Daniel Huber ◽  
Christian Schimpf ◽  
Saimon F. Covre da Silva ◽  
Michele B. Rota ◽  
...  

All-optical quantum teleportation lies at the heart of quantum communication science and technology. This quantum phenomenon is built up around the nonlocal properties of entangled states of light that, in the perspective of real-life applications, should be encoded on photon pairs generated on demand. Despite recent advances, however, the exploitation of deterministic quantum light sources in push-button quantum teleportation schemes remains a major open challenge. Here, we perform an important step toward this goal and show that photon pairs generated on demand by a GaAs quantum dot can be used to implement a teleportation protocol whose fidelity violates the classical limit (by more than 5 SDs) for arbitrary input states. Moreover, we develop a theoretical framework that matches the experimental observations and that defines the degree of entanglement and indistinguishability needed to overcome the classical limit independently of the input state. Our results emphasize that on-demand solid-state quantum emitters are one of the most promising candidates to realize deterministic quantum teleportation in practical quantum networks.


2021 ◽  
Author(s):  
Ngan Pham ◽  
Yao Yao ◽  
Chenyu Wen ◽  
Shiyu Li ◽  
Shuangshuang Zeng ◽  
...  

Abstract Solid-state nanopores (SSNPs) of on-demand shape and size can facilitate desired sensor performance. However, reproducible production of arrayed nanopores of predefined geometry is yet to demonstrate despite of numerous methods explored. Here, bowl-shape SSNPs combining unique properties of ultrathin membrane and tapering geometry are demonstrated. The bowl-SSNP upper opening is 100-120 nm in diameter, with the bottom opening reaching sub-5 nm. Numerical simulation reveals the formation of multiple electroosmotic vortexes (EOVs) originating from distributed surface charge around the pore-bowl. The EOVs determine, collaboratively with electrophoretic force, how nanoscale objects translocate the bowl-SSNPs. Exceptional rectification with higher frequencies, longer duration and larger amplitude is found when DNA strands translocate downwards from the upper large opening than upwards from the bottom smallest restriction. The rectification is a manifestation of the interplay between electrophoresis and electroosmosis. The resourceful silicon nanofabrication technology is ingeniously shown to enable innovative nanopore designs targeting unprecedented sensor applications.


2019 ◽  
Vol 10 (1) ◽  
Author(s):  
Tzu-Yung Huang ◽  
Richard R. Grote ◽  
Sander A. Mann ◽  
David A. Hopper ◽  
Annemarie L. Exarhos ◽  
...  
Keyword(s):  

CLEO: 2014 ◽  
2014 ◽  
Author(s):  
W. B. Gao ◽  
P. Fallahi ◽  
E. Togan ◽  
A. Delteil ◽  
Y. S. Chin ◽  
...  

CLEO: 2013 ◽  
2013 ◽  
Author(s):  
Keyu Xia ◽  
Gavin K. Brennen ◽  
Demosthenes Ellinas ◽  
Jason Twamley

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