4.6 Article

Rapid Detection of Infectious Envelope Proteins by Magnetoplasmonic Toroidal Metasensors

期刊

ACS SENSORS
卷 2, 期 9, 页码 1359-1368

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.7b00478

关键词

terahertz plasmonics; toroidal metasurface; immunosensing; Zika-virus envelope protein; detection

资金

  1. Army Research Laboratory (ARL) Multiscale Multidisciplinary Modelling of Electronic Materials (MSME) Collaborative Research Alliance (CRA) [W911NF-12-2-0023]
  2. National Institutes of Health (NIH) [R01-DA027049, R01-DA034547, R01-DA037838, R01-DA040537, R01-DA042706]
  3. University Graduate School (UGS) at Florida International University

向作者/读者索取更多资源

Unconventional characteristics of magnetic toroidal multipoles have triggered researchers to study these unique resonant phenomena by using both 3D and planar resonators under intense radiation. Here, going beyond conventional planar unit cells, we report on the observation of magnetic toroidal modes using artificially engineered multimetallic planar plasmonic resonators. The proposed microstructures consist of iron (Fe) and titanium (Ti) components acting as magnetic resonators and torus, respectively. Our numerical studies and following experimental verifications show that the proposed structures allow for excitation of toroidal dipoles in the terahertz (THz) domain with the experimental Q-factor of similar to 18. Taking the advantage of high-Q toroidal line shape and its dependence on the environmental perturbations, we demonstrate that room-temperature toroidal metasurface is a reliable platform for immunosensing applications. As a proof of concept, we utilized our plasmonic metasurface to detect Zika-virus (ZIKV) envelope protein (with diameter of 40 nm) using a specific ZIKV antibody. The sharp toroidal resonant modes of the surface functionalized structures shift as a function of the ZIKV envelope protein for small concentrations (similar to pM). The results of sensing experiments reveal rapid, accurate, and quantitative detection of envelope proteins with the limit of detection of similar to 24.2 pg/mL and sensitivity of 6.47 GHz/log(pg/mL). We envision that the proposed toroidal metasurface opens new avenues for developing low-cost, and efficient THz plasmonic sensors for infection and targeted bioagent detection.

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