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Transmissive polarization manipulation devices find broad and consequential utility across domains such as satellite radar and wireless communication. This paper demonstrates a new design concept for a metastructure specifically engineered for polarization conversion (PC), based on the phenomenon of electromagnetically induced transparency (EIT) resulting from the assisted excitation of interference in toroidal dipoles. When subjected to normally incident -polarized and -polarized waves, the proposed metastructure can engender two distinct EIT windows of heightened transmission and low loss, achieving a maximum transmittance coefficient of 0.94. Then, under 45° linearly polarized wave incidence, leveraging the highly transmissive windows and introducing selective additional phase differences within different unit cells, the proposed metastructure can fulfill the requisite amplitude and phase conditions for achieving linear-to-circular PC in transmission mode. Numerical results substantiate that the proposed metastructure effectively retrieves the desired circularly polarized waves at 0.935 THz and 1.182 THz, yielding axial ratios of 1.22 dB and 1.18 dB, respectively, while maintaining robustness against wide-angle incidence. The proposed metastructure combines the three design concepts of toroidal dipoles, EIT, and linear-to-circular polarization conversion, enabling the realization of polarization-manipulating function with low loss and stability under large incident angles. This innovative design introduces fresh perspectives for transmissive polarization modulation devices, holding significant potential applications across diverse domains including polarization manipulation, optical filtering, multipole electromagnetics, and multifunctional integration.
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http://dx.doi.org/10.1039/d5nr00006h | DOI Listing |
Adv Mater
September 2025
School of Fashion and Textiles, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, 999077, P. R. China.
Fiber-reinforced polymer composite mechanical metamaterials have emerged as promising candidates for multifunctional structural applications owing to their exceptional strength-to-weight ratios. However, achieving concurrent high stiffness, high strength, and large recoverable strain in such structures remains challenging due to inherent trade-offs between these properties. To address this limitation, a novel Möbius-inspired metamaterial through optimized fiber orientation design is developed.
View Article and Find Full Text PDFDalton Trans
September 2025
Jiangsu Key Laboratory for Optoelectronic Detection of Atmosphere and Ocean, Nanjing University of Information Science and Technology, Nanjing, Jiangsu 210044, China.
We propose a dynamically tunable and angle-robust mid-infrared (mid-IR) absorber based on a hybrid metastructure composed of a top-layer Ge grating, an ultrathin SrTiO polar dielectric layer, a thermochromic VO film, and a metallic substrate. The optical response of the system is modeled using rigorous coupled-wave analysis (RCWA), revealing broadband and high-efficiency absorption across a wide range of incident angles (0°-80°) under transverse-magnetic (TM) polarization. The absorption behavior is governed by the interplay of multiple resonant mechanisms, including guided-mode resonance (GMR) in the Ge grating, phonon-polariton (PhP) excitation in the SrTiO layer, and cavity-like modes facilitated by the insulating VO.
View Article and Find Full Text PDFACS Nano
August 2025
School of Electrical and Electronic Engineering, Yonsei University, Seoul 03722, Korea.
This study introduces an innovative nanophotonic biosensor system designed to explore exosome dynamics within the gut-brain axis, highlighting the bidirectional and biochemical communication between the gastrointestinal tract and the central nervous system. The proposed system incorporates coculture environments for various cell types, microfluidic control of exosomes, and super-resolution imaging capabilities for both exosomes and live cells. While enabling real-time observation of long-range exosome dynamics within the gut-brain-axis-on-a-chip, this approach offers superior spatial resolution for visualizing individual exosomes in both donor and recipient cells.
View Article and Find Full Text PDFIn this paper, a theoretical research on asymmetric directional transmission-absorption device (ADTD) is proposed. Asymmetric properties based on a hyperbolic metamaterial slab (HMMS) and an angle selection function based on photonic band gaps are introduced to realize the directionally selective function. HMMS enables asymmetric properties between positive and negative incident angles.
View Article and Find Full Text PDFAdv Sci (Weinh)
August 2025
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.
Physics-driven acoustic metamaterials offer unprecedented capabilities in manipulating sound wave propagation. Among these, sound-absorbing metamaterials emerge as powerful tools for achieving subwavelength control and high-efficiency absorption. However, most existing designs are typically constrained to unidirectional absorption, limiting their applicability in noise-sensitive scenarios requiring bidirectional control.
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