Adiabatic Sum-Frequency Conversion

Author(s):  
Haim Suchowski ◽  
Dan Oron ◽  
Ady Arie ◽  
Yaron Silberberg
Author(s):  
G. Harder ◽  
V. Ansari ◽  
T. J. Bartley ◽  
B. Brecht ◽  
C. Silberhorn

In the last few decades, there has been much progress on low loss waveguides, very efficient photon-number detectors and nonlinear processes. Engineered sum-frequency conversion is now at a stage where it allows operation on arbitrary temporal broadband modes, thus making the spectral degree of freedom accessible for information coding. Hereby the information is often encoded into the temporal modes of a single photon. Here, we analyse the prospect of using multi-photon states or squeezed states in different temporal modes based on integrated optics devices. We describe an analogy between mode-selective sum-frequency conversion and a network of spatial beam splitters. Furthermore, we analyse the limits on the achievable squeezing in waveguides with current technology and the loss limits in the conversion process. This article is part of the themed issue ‘Quantum technology for the 21st century’.


Author(s):  
Alexander S. Solntsev ◽  
Luca Carletti ◽  
Lei Xu ◽  
Alexander N. Poddubny ◽  
Costantino De Angelis ◽  
...  

2010 ◽  
Vol 18 (19) ◽  
pp. 20428 ◽  
Author(s):  
Ren Liqing ◽  
Li Yongfang ◽  
Li Baihong ◽  
Wang Lei ◽  
Wang Zhaohua

2016 ◽  
Vol 65 (7) ◽  
pp. 074202
Author(s):  
Tan Wei ◽  
Qiu Xiao-Dong ◽  
Zhao Gang ◽  
Hou Jia-Jia ◽  
Jia Meng-Yuan ◽  
...  

2020 ◽  
Vol 14 (10) ◽  
pp. 2000040
Author(s):  
Michael Mrejen ◽  
Yoni Erlich ◽  
Assaf Levanon ◽  
Haim Suchowski

Author(s):  
Timo Stolt ◽  
Mikko J. Huttunen

Abstract Frequency conversion of light can be dramatically enhanced using high quality factor (Q-factor) cavities. Unfortunately, the achievable conversion efficiencies and conversion bandwidths are fundamentally limited by the time–bandwidth limit of the cavity, restricting their use in frequency conversion of ultrashort pulses. Here, we propose and numerically demonstrate sum-frequency generation based frequency conversion using a metasurface-based cavity configuration that could overcome this limitation. The proposed experimental configuration takes use of the spatially dispersive responses of periodic metasurfaces supporting collective surface lattice resonances (SLRs), and can be utilized for broadband frequency conversion of ultrashort pulses. We investigate a plasmonic metasurface, supporting a high-Q SLR (Q=500, linewidth of 2 nm) centred near 1000 nm, and demonstrate ~1000-fold enhancements of nonlinear signals. Furthermore, we demonstrate broadband frequency conversion with a pump conversion bandwidth reaching 75 nm, a value that greatly surpasses the linewidth of the studied cavity. Our work opens new avenues to utilize high-Q metasurfaces also for broadband frequency conversion of light.


2019 ◽  
Vol 1189 ◽  
pp. 012023
Author(s):  
D V Badikov ◽  
V V Badikov ◽  
A A Ionin ◽  
I O Kinyaevskiy ◽  
Yu M Klimachev ◽  
...  

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