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Home NEWS Science News Chemistry

Optically controlled metasurfaces for dynamic dual-mode modulation

Bioengineer by Bioengineer
April 12, 2023
in Chemistry
Reading Time: 3 mins read
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Dynamic control of terahertz (THz) waves at-will with an ultracompact device is important for THz technologies in biomedical imaging, telecommunications, detection, and beyond. However, tunable THz devices made of conventional materials are usually bulky, and they tend to have limited modulation depths and functionalities, due to weak interactions between naturally existing materials and THz waves. Metasurfaces – functional materials endowed with unparalleled flexibility to manipulate light at the deep-subwavelength scale – provide a powerful platform for dynamic control of THz waves.

Optically controlled - 920

Credit: Zhou et al., doi 10.1117/1.AP.5.2.026005

Dynamic control of terahertz (THz) waves at-will with an ultracompact device is important for THz technologies in biomedical imaging, telecommunications, detection, and beyond. However, tunable THz devices made of conventional materials are usually bulky, and they tend to have limited modulation depths and functionalities, due to weak interactions between naturally existing materials and THz waves. Metasurfaces – functional materials endowed with unparalleled flexibility to manipulate light at the deep-subwavelength scale – provide a powerful platform for dynamic control of THz waves.

Combining passive metasurfaces with different external-stimuli-controlled materials, optically controlled metadevices have attracted attention in this regard. Their attractive properties include ultrafast modulation speed and high modulation pixel resolution. Most optically controlled metadevices can achieve light modulation that is either selective or unselective of frequency. Dual-mode yet distinctly tunable light manipulation – say, upon adjusting an external knob in a simple device – is highly desired for applications in integrated optics.

As reported in Advanced Photonics, researchers from Fudan University’s Department of Physics recently established a novel metasurface-based approach that achieves dynamic dual-mode modulation of THz waves by varying the wavelength of pumping light with an additional knob. Specifically, their experiment demonstrated that a predesigned dielectric metasurface can realize mode-selective or mode-unselective modulations on incident THz waves, by switching the wavelength of the pump wavelength (e.g., 515 nm or 1030 nm). Their theoretical analyses revealed that such dual-mode modulation can be effectively controlled by carefully designing the spatial overlap between the wave-functions of the metasurface’s resonant modes and the regions perturbed by the pump-laser excitation at different wavelengths.

Inspired by their discovery of the mechanism, the researcher team further demonstrated two active metadevices with distinct light-modulation functionalities. In experiments and simulations, they first presented a device that can dynamically change the polarization state of incident THz waves dictated by both pump wavelength and pump fluence. Then, they presented a device that can encrypt optical information so that it displays a predesigned holographic pattern only when excited by a pump beam at a predetermined correct wavelength.

According to corresponding author Qiong He, Professor of Physics at Fudan University, “We anticipate that this work will stimulate many new tunable devices with distinct light-modulation functionalities.” He adds, “These functionalities may be useful for numerous applications, such as sensing, security, and next generation wireless communications.”

Read the Gold Open Access article by H. Zhou, S. Zhang, S. Wang, et al., “Optically controlled dielectric metasurfaces for dynamic dual-mode modulation on terahertz waves,” Adv. Photon. 5(2) 026005 (2023), doi 10.1117/1.AP.5.2.026005



Journal

Advanced Photonics

DOI

10.1117/1.AP.5.2.026005

Method of Research

Experimental study

Subject of Research

Not applicable

Article Title

Optically controlled metasurfaces for dynamic dual-mode modulation

Article Publication Date

11-Apr-2023

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