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Updated: Mar 14, 2026

Fabricating Metamaterials Using the Fiber Drawing Method
Published on: October 18, 2012
Breaking bandwidth limits in transformation optics with Brewster-enhanced metamaterials
Xiaojun Hu1, Yu Luo2, Jingxin Tang1
1Laboratory of Applied Research on Electromagnetics (ARE), College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, China.
None:
Transformation optics (TO) enables unprecedented electromagnetic wave manipulation through the theory of coordinate transformations, yet its practical implementation has been fundamentally constrained by narrowband operation stemming from extreme material requirements. To break this spectral bottleneck, a dual-mode metamaterial architecture synergizing Brewster-angle broadband transmission with Fabry-Pérot multiband resonance is proposed. This approach leverages cascaded impedance-engineered slot cavities-constructed from conventional dielectrics and standard metallic patterning-to achieve transformation invariance while eliminating exotic material needs. This framework enables two spectral functionalities simultaneously in a single platform: (i) omnidirectional multiband operation through discrete resonances and (ii) broadband unidirectional performance via angular-selective Brewster transmission. Experimental validation demonstrates a full-parameter invisibility cloak maintaining >88.4% transmittance across X-band frequencies (7.5-12.5 GHz) with ±70[Formula: see text] angular tolerance, alongside a retroreflector achieving near-unity efficiency in X/K bands (12-24 GHz) within ±60[Formula: see text] illumination. By resolving the fundamental conflict between bandwidth and geometric complexity in TO designs, this work establishes a scalable paradigm for multifunctional wave-control devices spanning radar stealth to next-generation communications.

