Tiếng Việt

Graphene terahertz absorber and graded plasma metamaterials

694
2024-05-20 15:10:17
Xem bản dịch

Optical metamaterials are an effective way to utilize their superior photon capture capabilities. Therefore, perfect absorbers can be achieved through nanoscale resonant plasmas and metamaterial structures.

Metamaterial perfect absorbers (MPAs) are typically composed of periodic subwavelength metals (such as plasma superabsorbers) or dielectric resonance units. Compared with static passive physical systems, tunable metamaterials can dynamically manipulate electromagnetic waves and improve multidimensional control of optical response. There are two typical strategies for achieving tunable properties in metamaterials: mechanical reconstruction and altering the lattice structure of metamaterials.

Compared to these classical methods, the combination of functional materials and metamaterial structures provides a way to change the optical properties of materials through external stimuli and has a faster response rate. Graphene, as a typical tunable functional material, has excellent mechanical, electrical, and optical properties. Combining graphene into metamaterial structures can significantly enhance the interaction between light and matter.

In this regard, Professor Wu Weiping's team has demonstrated a novel tunable ultra wideband terahertz absorber by utilizing the unique characteristics of graphene and hierarchical structure plasma metamaterials. The research paper of the team was published in the journal Advanced Equipment and Instruments.

The metamaterial structure includes alternating T-shaped gold bars/squares, dielectric layers, and graphene layers on the gold layer. The average absorption of MPA achieved 90% in the ultra wide frequency range from 20.8 THz to 39.7 THz. The origin of broadband characteristics was analyzed through electric field diagrams, and the modulation of graphene on the absorption window was studied. In addition, the influence of different parameters on the results was studied, and the potential applications of this structure in the field of optoelectronics were discussed.

Finally, some broadband absorbers in the terahertz far infrared band recently reported were compared and analyzed with the results of this work. The proposed metamaterial broadband absorber has higher average absorption and a wider frequency range. The proposed structure only has a patterned layer of gold, which has significant advantages in manufacturing compared to other literature.

In summary, a novel ultra wideband tunable terahertz absorber for graphene and hierarchical structure plasma metamaterials was proposed and studied, and numerical studies were conducted on the almost perfect ultra wideband absorption of 20.8THz-39.7THz. The proposed absorber is achieved by alternately arranging two gold structures of different sizes in each crystal cell. The bandwidth absorbed by the broadband absorber exceeds 90% and is approximately 18.9 THz.

By adjusting the Fermi level of graphene, the position of ultra wideband can be adjusted. In addition, the influence of geometric parameters on the absorption spectrum of the absorber was quantitatively analyzed. These results indicate that the metamaterial absorber proposed in this work can bring further improvements in the fields of tunable filtering, detectors, controlled thermal radiation, and other photonic devices.

Source: Laser Net

Đề xuất liên quan
  • Nankai University makes progress in the field of free electron photon interactions

    Recently, a research team led by Professor Cai Wei and Professor Xu Jingjun from the School of Physical Sciences at Nankai University has experimentally confirmed for the first time the generation of polaritons, also known as Smith Purcell radiation, at the two-dimensional scale, and further demonstrated the ability of free electrons to regulate two-dimensional Smith Purcell radiation. The researc...

    02-11
    Xem bản dịch
  • New type of metasurface with adjustable beam frequency and direction

    Recently, according to the journal Nature Nanotechnology, a team from the California Institute of Technology reported that they have constructed a metasurface covered with micro adjustable antennas that can reflect incident light beams: one beam of light enters and multiple beams of light exit, each with a different frequency and propagating in a different direction. This is a new method for proce...

    2024-07-30
    Xem bản dịch
  • Sivers Semiconductors, an optoelectronic semiconductor company, splits off its photonics business and goes public independently

    Recently, Sivers Semiconductors, a leading supplier of integrated chips and photonics modules for communication and sensing solutions, announced a significant strategic initiative:It will divest its subsidiary Sivers Photonics Ltd, which has signed a non binding letter of intent (LOI) with byNordic Acquisition Corporation and plans to achieve independent listing through a merger. This move aims ...

    2024-08-26
    Xem bản dịch
  • Researchers successfully 3D printed polymer based robotic arms through laser scanning

    Researchers from the Federal Institute of Technology in Zurich and an American startup used slow curing plastic to develop durable and sturdy robots using high-quality materials.The team can now print these complex robots at once and combine soft, elastic, and rigid materials together. This allows for the creation of precision structures and parts with cavities as needed.Inkbit, a derivative compa...

    2023-11-16
    Xem bản dịch
  • Instrument Systems will showcase advanced optical measurement solutions for display technology in San Jose next week

    In the 2024 Showweek Germany Pavilion, Instrument Systems will showcase the LumiTop series, a series of imaging colorimeters designed specifically for high-precision and fast 2D measurements, to meet specific needs in AR/VR, automotive, and continuous production environments.The LumiTop 5300 AR/VR is a high-resolution camera developed specifically for evaluating near eye displays, which will recei...

    2024-05-09
    Xem bản dịch