Examining the interaction of technology adoption-diffusion and sectoral emission intensity in developing and emerging countries

JOURNAL OF COLLOID AND INTERFACE SCIENCE(2023)

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摘要
In this work, an integration of terahertz (THz) electrical split-ring metamaterial (eSRM) with microfluidic chip is presented. This eSRM-based microfluidic chip exhibits multiple resonances in the THz spectrum and trapping selectively microparticle size characteristics. The arrangement of eSRM array is dislocation. It generates the fundamental inductive-capacitive (LC) resonant mode, quadrupole, and octupolar plas-mon resonant modes and then exhibits high sensitivity to the environmental refraction index. The trap-ping structures of microparticles are elliptical barricades on eSRM surface. Thus, the electric field energy is strongly confined within the gap of eSRM in transverse electric (TE) mode and then the elliptical trap-ping structures are anchored on both sides of the split gap to ensure the microparticles can be trapped and located on the gap. To imitate the microparticle sensing ambient environment qualitatively and quantitatively in the THz spectrum, the microparticles are designed different feature sizes with different refraction index from 1.0 to 2.0 in ethanol medium. The results show the proposed eSRM-based microflu-idic chip possesses the trapping and sensing abilities in single microparticle and high sensitivity for fun -gus, microorganism, chemical and environmental applications. (c) 2023 Elsevier Inc. All rights reserved.
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关键词
Metamaterial,Microfluidic,Multiple resonances,Microparticle trapper,Label-free biosensor,Chemical sensor
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