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The evolution of electronics has largely relied on downscaling to meet the continuous needs for faster and highly integrated devices. As the channel length is reduced, however, classic electronic devices face fundamental issues that hinder exploiting materials to their full potential and, ultimately, further miniaturization. For example, the carrier injection through tunnelling junctions dominates the channel resistance, whereas the high parasitic capacitances drastically limit the maximum operating frequency. In addition, these ultra-scaled devices can only hold a few volts due to the extremely high electric fields, which limits their maximum delivered power. Here we challenge such traditional limitations and propose the concept of electronic metadevices, in which the microscopic manipulation of radiofrequency fields results in extraordinary electronic properties. The devices operate on the basis of electrostatic control of collective electromagnetic interactions at deep subwavelength scales, as an alternative to controlling the flow of electrons in traditional devices, such as diodes and transistors. This enables a new class of electronic devices with cutoff frequency figure-of-merit well beyond ten terahertz, record high conductance values, extremely high breakdown voltages and picosecond switching speeds. This work sets the stage for the next generation of ultrafast semiconductor devices and presents a new paradigm that potentially bridges the gap between electronics and optics.
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http://dx.doi.org/10.1038/s41586-022-05595-z | DOI Listing |
Nat Commun
August 2025
State Key Laboratory of Photonics and Communications, School of Electronics, Peking University, Beijing, China.
Capturing multi-dimensional optical information is indispensable in modern optics. However, existing photodetectors can at best detect light fields whose wavelengths or polarizations are predefined at several specific values. Integrating broadband high-dimensional continuous photodetection including intensity, polarization, and wavelength within a single device still poses formidable challenges.
View Article and Find Full Text PDFResearch (Wash D C)
August 2025
Photonics Initiative, Advanced Science Research Center, City University of New York, New York, NY 10031, USA.
The terahertz (THz) frequency range, situated between microwave and infrared radiation, has emerged as a pivotal domain with broad applications in high-speed communication, imaging, sensing, and biosensing. The development of topological THz metadevices represents a notable advancement for photonic technologies, leveraging the distinctive electronic properties and quantum-inspired phenomena inherent to topological materials. These devices enable robust waveguiding capabilities, positioning them as critical components for on-chip data transfer and photonic integrated circuits, particularly within emerging 6G communication frameworks.
View Article and Find Full Text PDFLight Sci Appl
August 2025
Electronic Information School, Wuhan University, Wuhan, 430072, China.
Classified as a non-Hermitian system, topological metasurface is one of the ideal platforms for exploring a striking property, that is, the exceptional point (EP). Recently, creating and encircling EP in metasurfaces has triggered various progressive functionalities, including polarization control and optical holographic encoding. However, existing topological metasurfaces mostly rely on plasmonic materials, which introduce inevitable ohmic losses and limit their compatibility with mainstream all-dielectric meta-devices.
View Article and Find Full Text PDFSci Bull (Beijing)
September 2025
Shaanxi Key Laboratory of Artificially-Structured Functional Materials and Devices, Air Force Engineering University, Xi'an 710051, China; Suzhou Laboratory, Suzhou 215000, China. Electronic address:
Traditionally, magic cube configurations, which have been employed to mechanically execute diverse and unconventional structural transformations, are capable of significantly boosting versatile electromagnetic responses of reconfigurable metamaterials. However, this idea is still in the initial exploration stage and faces many constraints. Here, we propose magic cube metamaterials with features of high transparency, multi-gradient phase distribution, full polarization, and high information, which manifest 47.
View Article and Find Full Text PDFAdv Sci (Weinh)
July 2025
Department of Electronic Engineering, Tsinghua University, Beijing, 100084, China.
In regular magneto-optical trap (MOT) systems, the delivery of six circularly polarized (CP) cooling beams requires complex and bulky optical arrangements including waveplates, mirrors, retroreflectors, etc. To address such technique challenges, a beam delivery system for miniaturized MOT is proposed entirely based on meta-devices. The key component is a novel polarization decoupling multi-port beam-splitting (PD-MPBS) metasurface that relies on both propagation phase and geometric phase.
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