Home¡¡||¡¡About Us¡¡||¡¡News¡¡||¡¡Tabloid¡¡||¡¡Academic Exchanges¡¡||¡¡Equipment information¡¡||¡¡Chinese  
news search
¡¡
NEW10
1 ¡¡Electric signals&nbs
2 ¡¡2D devices have
3 ¡¡Stable ferroaxial&nb
4 ¡¡Terahertz spectrosco
5 ¡¡Ultrafast infrared&n
6 ¡¡Permeable inspection
7 ¡¡A new way 
8 ¡¡Quantum 'curvatu
9 ¡¡Physicists use 
10 ¡¡Scientists detect&nb
TOP10 click no.
¡¡2009 Conference  122116
¡¡2008 Conference  120281
¡¡Researchers take&nbs 24039
¡¡2014 Conference  20972
¡¡The Research Ac 16446
¡¡Terahertz Near-Field 14413
¡¡The rise of&nbs 14350
¡¡THz Wave Photon 14347
¡¡2014 Conference  11477
¡¡2015 Conference  10306
     news center
New technique offers unprecedented control over light at terahertz frequencies
date£º2024-08-28 21:34:06 Click No.£º307

by TranSpread

Researchers have developed a novel method for generating structured terahertz light beams using programmable spintronic emitters. This breakthrough offers a significant leap forward in terahertz technology, enabling the generation and manipulation of light with both spin and orbital angular momentum at these frequencies for the first time.

Terahertz radiation lies between microwaves and infrared light on the electromagnetic spectrum. It holds great promise for various applications, including security scanners, medical imaging, and ultrafast communication. However, generating and controlling terahertz light effectively has proven challenging.

This new research, published in eLight and led by Prof. Zhensheng Tao, Prof. Yizheng Wu from Fudan University and Prof. Yan Zhang from Capital Normal University, overcomes these limitations by employing programmable spintronic emitters based on exchange-biased magnetic multilayers. These devices consist of thin layers of magnetic and non-magnetic materials that convert laser-induced spin-polarized currents into broadband terahertz radiation.

"The key innovation lies in our ability to flexibly program the magnetization pattern within the emitter with high precision and high spatial resolution," graduate student and first author Shunjia Wang explains. "This allows us to design and generate terahertz beams with complex polarization states, including beams with spatially separated circular polarizations, azimuthal or radial polarization states, and even a full Poincar¨¦ beam."

A Poincar¨¦ beam exhibits all possible states of light polarization within its cross-section. This unique property has applications in areas like generating special optical forces, achieving flat-top intensity profiles, and single-shot polarimetry measurements.

The researchers successfully demonstrated the generation of various structured terahertz beams using their programmable emitters. These beams hold promise for advancing terahertz technologies in numerous fields.

"Our findings pave the way for the development of novel terahertz devices with enhanced functionalities," concludes Prof. Zhensheng Tao. "The ability to manipulate terahertz light with such precision opens exciting possibilities for applications in spectroscopy, sensing, and communication."

 
 

Print | close

Copyright© 2006-2022 www.thznetwork.org.cn All Rights Reserved
No.4, Section 2, North Jianshe Road, Chengdu, Sichuan, P.R.China, 610054