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Updated: Aug 1, 2026

Terahertz Microfluidic Sensing Using a Parallel-plate Waveguide Sensor
Published on: August 30, 2012
Reflection-enhanced terahertz beam steering via a backside-driven metasurface enabled by dielectric-superstrate
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Actively tuned metasurfaces have emerged as a key enabling technology for terahertz (THz) beam steering, owing to their outstanding capability for dynamic and flexible wavefront modulation. However, most existing devices feature a metal-dielectric-metal configuration from front to back, which imposes constraints on structural simplicity and active control integration. Here, a backside-driven active metasurface is proposed for reflected THz beam steering, composed of a dielectric superstrate and rear-mounted meta-atoms integrated with vanadium dioxide (VO2) switches. Based on transmission line theory, its interface impedances in the ON and OFF states are analyzed to realize both enhanced reflection and large-range phase modulation using single-layer meta-atoms. By matching the thickness of the dielectric superstrate, this design achieves a 1-bit phase shift of 180° around 0.34 THz through toggling the VO2 switches. With array arrangements according to specific 1-bit coding sequences, the experiment demonstrates that the THz beam can be accurately reflected towards designated angles and subsequently redirected to specular reflection when all VO2 switches transition to the ON state. This work presents a simplified architecture that allows backside control integration without disturbing the front-side beam steering, providing a meaningful step forward in THz metasurface-assisted communications, detections, and imaging.
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