Electrically Tunable VO2-Based Metasurface for Shared-Aperture Terahertz Molecular Fingerprint Sensing and Programmable Wavefront Manipulation

Metasurfaces enable spatially programmable control of far-field wavefronts, while broadband molecular sensing relies on strong near-field confinement and enhanced light–matter interaction. The mismatch between far-field radiation and near-field localization makes their monolithic integration in a single shared aperture challenging. Here, we report an electrically tunable terahertz (THz) VO2-based metasurface designed under temporal coupled mode theory (TCMT). The device adopts a metal–insulator–metal (MIM) architecture integrating a VO2 microbridge and bowtie antenna, enabling bias-controlled switching between molecular fingerprint sensing and programmable wavefront manipulation in a shared aperture. At zero bias, the metasurface operates in an over-coupled regime, supporting a broadband low Q resonance over 0.8–1.2 THz with strong local field enhancement for molecular fingerprint sensing demonstration, serving as a passive near-field sensing mode. Under the metallic state condition induced by the VO2 phase transition, the unit cell exhibits an approximately 180° reflection phase shift with nearly invariant amplitude. An electrically assisted programmable addressing implementation is proposed by exploiting the electrothermal switching capability of VO2. Each unit cell thus functions as a 1-bit programmable meta-atom. By reconfiguring the spatial coding sequence, the device realizes anomalous reflection and beam splitting, which are further extended to refractive index sensing: thin analyte layers (<10 μm) are detected via anomalous reflection, whereas thicker layers are detected via beam splitting when the anomalous beam is suppressed. This constitutes a far-field active sensing mode. Both functionalities originate from the same over-coupled radiative loss mechanism: enhanced near fields enable fingerprint sensing, while the open radiative channel supports far-field refractive index sensing through programmed phase coding. This shared aperture design unifies near-field and far-field, passive and active sensing, offering a compact platform for THz integrated sensing and communication.

Authors

Institutions

Publication Details

Journal
Nanomaterials
Published
2026-09-16
DOI
https://doi.org/10.3390/nano16181170
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Electrically Tunable VO2-Based Metasurface for Shared-Aperture Terahertz Molecular Fingerprint Sensing and Programmable Wavefront Manipulation

Xilai Zhao, Xiongyu Liang, Zhenxu Wang, Wenye Ji et al.
Nanomaterials
Metamaterials and Metasurfaces Applications
article

Electrically Tunable VO2-Based Metasurface for Shared-Aperture Terahertz Molecular Fingerprint Sensing and Programmable Wavefront Manipulation

Xilai Zhao, Xiongyu Liang, Zhenxu Wang, Wenye Ji, Tong Cai, Jiangang Liang, Wenlong Li, Jiahe Wang
article en

Abstract

Metasurfaces enable spatially programmable control of far-field wavefronts, while broadband molecular sensing relies on strong near-field confinement and enhanced light–matter interaction. The mismatch between far-field radiation and near-field localization makes their monolithic integration in a single shared aperture challenging. Here, we report an electrically tunable terahertz (THz) VO2-based metasurface designed under temporal coupled mode theory (TCMT). The device adopts a metal–insulator–metal (MIM) architecture integrating a VO2 microbridge and bowtie antenna, enabling bias-controlled switching between molecular fingerprint sensing and programmable wavefront manipulation in a shared aperture. At zero bias, the metasurface operates in an over-coupled regime, supporting a broadband low Q resonance over 0.8–1.2 THz with strong local field enhancement for molecular fingerprint sensing demonstration, serving as a passive near-field sensing mode. Under the metallic state condition induced by the VO2 phase transition, the unit cell exhibits an approximately 180° reflection phase shift with nearly invariant amplitude. An electrically assisted programmable addressing implementation is proposed by exploiting the electrothermal switching capability of VO2. Each unit cell thus functions as a 1-bit programmable meta-atom. By reconfiguring the spatial coding sequence, the device realizes anomalous reflection and beam splitting, which are further extended to refractive index sensing: thin analyte layers (<10 μm) are detected via anomalous reflection, whereas thicker layers are detected via beam splitting when the anomalous beam is suppressed. This constitutes a far-field active sensing mode. Both functionalities originate from the same over-coupled radiative loss mechanism: enhanced near fields enable fingerprint sensing, while the open radiative channel supports far-field refractive index sensing through programmed phase coding. This shared aperture design unifies near-field and far-field, passive and active sensing, offering a compact platform for THz integrated sensing and communication.

NanomaterialsVol. 16(18)
Air Force Engineering University (CN)
Openalex Percentile: Top 28%
Metamaterials and Metasurfaces Applications
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.