Ultrafast control of vortex microlasers

Science ◽  
2020 ◽  
Vol 367 (6481) ◽  
pp. 1018-1021 ◽  
Author(s):  
Can Huang ◽  
Chen Zhang ◽  
Shumin Xiao ◽  
Yuhan Wang ◽  
Yubin Fan ◽  
...  

The development of classical and quantum information–processing technology calls for on-chip integrated sources of structured light. Although integrated vortex microlasers have been previously demonstrated, they remain static and possess relatively high lasing thresholds, making them unsuitable for high-speed optical communication and computing. We introduce perovskite-based vortex microlasers and demonstrate their application to ultrafast all-optical switching at room temperature. By exploiting both mode symmetry and far-field properties, we reveal that the vortex beam lasing can be switched to linearly polarized beam lasing, or vice versa, with switching times of 1 to 1.5 picoseconds and energy consumption that is orders of magnitude lower than in previously demonstrated all-optical switching. Our results provide an approach that breaks the long-standing trade-off between low energy consumption and high-speed nanophotonics, introducing vortex microlasers that are switchable at terahertz frequencies.

1993 ◽  
Vol 62 (9) ◽  
pp. 925-927 ◽  
Author(s):  
S. Nakamura ◽  
K. Tajima ◽  
N. Hamao ◽  
Y. Sugimoto

2017 ◽  
Vol 11 (5) ◽  
pp. 1770054
Author(s):  
Zhen Chai ◽  
Xiaoyong Hu ◽  
Feifan Wang ◽  
Chong Li ◽  
Yutian Ao ◽  
...  

2019 ◽  
Vol 10 (1) ◽  
Author(s):  
D. O. Ignatyeva ◽  
C. S. Davies ◽  
D. A. Sylgacheva ◽  
A. Tsukamoto ◽  
H. Yoshikawa ◽  
...  

Abstract All-optical magnetization reversal with femtosecond laser pulses facilitates the fastest and least dissipative magnetic recording, but writing magnetic bits with spatial resolution better than the wavelength of light has so far been seen as a major challenge. Here, we demonstrate that a single femtosecond laser pulse of wavelength 800 nm can be used to toggle the magnetization exclusively within one of two 10-nm thick magnetic nanolayers, separated by just 80 nm, without affecting the other one. The choice of the addressed layer is enabled by the excitation of a plasmon-polariton at a targeted interface of the nanostructure, and realized merely by rotating the polarization-axis of the linearly-polarized ultrashort optical pulse by 90°. Our results unveil a robust tool that can be deployed to reliably switch magnetization in targeted nanolayers of heterostructures, and paves the way to increasing the storage density of opto-magnetic recording by a factor of at least 2.


2007 ◽  
Vol 32 (14) ◽  
pp. 2046 ◽  
Author(s):  
Michael Först ◽  
Jan Niehusmann ◽  
Tobias Plötzing ◽  
Jens Bolten ◽  
Thorsten Wahlbrink ◽  
...  

2021 ◽  
Vol 7 (12) ◽  
pp. eabe8924
Author(s):  
Ming-Xin Dong ◽  
Ke-Yu Xia ◽  
Wei-Hang Zhang ◽  
Yi-Chen Yu ◽  
Ying-Hao Ye ◽  
...  

Nonreciprocal devices operating at the single-photon level are fundamental elements for quantum technologies. Because magneto-optical nonreciprocal devices are incompatible for magnetic-sensitive or on-chip quantum information processing, all-optical nonreciprocal isolation is highly desired, but its realization at the quantum level is yet to be accomplished at room temperature. Here, we propose and experimentally demonstrate two regimes, using electromagnetically induced transparency (EIT) or a Raman transition, for all-optical isolation with warm atoms. We achieve an isolation of 22.52 ± 0.10 dB and an insertion loss of about 1.95 dB for a genuine single photon, with bandwidth up to hundreds of megahertz. The Raman regime realized in the same experimental setup enables us to achieve high isolation and low insertion loss for coherent optical fields with reversed isolation direction. These realizations of single-photon isolation and coherent light isolation at room temperature are promising for simpler reconfiguration of high-speed classical and quantum information processing.


Author(s):  
Soham Saha ◽  
Benjamin T. Diroll ◽  
Joshua Shank ◽  
Zhaxylyk Kudyshev ◽  
Aveek Dutta ◽  
...  

2017 ◽  
Vol 11 (5) ◽  
pp. 1700042 ◽  
Author(s):  
Zhen Chai ◽  
Xiaoyong Hu ◽  
Feifan Wang ◽  
Chong Li ◽  
Yutian Ao ◽  
...  

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