Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules

Abstract Terahertz spectroscopy has drawn great interest for the detection and characterization of biological matter, but its limited sensitivity to biomolecules with weak changes in dielectric properties with varying concentration has hinders potential bio-sensing applications. Here, a novel terahe...

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Main Authors: Min Zhang, Liwen Jiang, Shuo Wang, Shoujun Zhang, Meng Liu, Yuping Zhang, Huiyun Zhang, Zhen Tian
Format: Article
Language:English
Published: Nature Portfolio 2025-03-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-93850-4
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author Min Zhang
Liwen Jiang
Shuo Wang
Shoujun Zhang
Meng Liu
Yuping Zhang
Huiyun Zhang
Zhen Tian
author_facet Min Zhang
Liwen Jiang
Shuo Wang
Shoujun Zhang
Meng Liu
Yuping Zhang
Huiyun Zhang
Zhen Tian
author_sort Min Zhang
collection DOAJ
description Abstract Terahertz spectroscopy has drawn great interest for the detection and characterization of biological matter, but its limited sensitivity to biomolecules with weak changes in dielectric properties with varying concentration has hinders potential bio-sensing applications. Here, a novel terahertz sensor was developed for enhancing the ability to detect biomolecules based on two electromagnetically induced transparency (EIT) metamaterials coupled with gold nanoparticles (AuNPs) integrated with biomolecules. The electrostatic interaction between AuNPs and positively charged biomolecules generates localized field enhancement at the biomolecule–metamaterial interface, resulting in a threefold increase in sensitivity for positively charged histidine that exhibit weak dielectric property changes with varying concentration. As a contrast, glucose shows a weaker effect due to its electrostatically neutral nature. Experimental studies reveal that by evaluating the modulation depth (MD) and modulation enhancement (ME) factors of the transmission peak for histidine and glucose in the presence of AuNPs, we achieve and enhance intuitive detection and discrimination of these biomolecules. Additionally, a two-EIT metamaterial with a 1 × 2 pixel array enables multiparameter imaging, visualizing the concentration and spatial distribution of biomolecules. Our results not only significantly improve the response sensitivity of biomolecules with weak dielectric properties in the terahertz domain, but also provide a new idea for developing high-sensitivity functionalized terahertz biosensors and advancing multi-biomolecular analysis and imaging techniques.
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spelling doaj-art-56900e0f75e54900a80edbb0db11dd9a2025-08-20T02:56:15ZengNature PortfolioScientific Reports2045-23222025-03-0115111310.1038/s41598-025-93850-4Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomoleculesMin Zhang0Liwen Jiang1Shuo Wang2Shoujun Zhang3Meng Liu4Yuping Zhang5Huiyun Zhang6Zhen Tian7College of Electronics and Information Engineering, Shandong University of Science and TechnologyCenter for Terahertz Waves and Key Laboratory of Optoelectronics Information and Technology (Ministry of Education), Tianjin UniversitySchool of Precision Instrument and Optoelectronics Engineering, Tianjin UniversityCenter for Terahertz Waves and Key Laboratory of Optoelectronics Information and Technology (Ministry of Education), Tianjin UniversityCollege of Electronics and Information Engineering, Shandong University of Science and TechnologyCollege of Electronics and Information Engineering, Shandong University of Science and TechnologyCollege of Electronics and Information Engineering, Shandong University of Science and TechnologyCenter for Terahertz Waves and Key Laboratory of Optoelectronics Information and Technology (Ministry of Education), Tianjin UniversityAbstract Terahertz spectroscopy has drawn great interest for the detection and characterization of biological matter, but its limited sensitivity to biomolecules with weak changes in dielectric properties with varying concentration has hinders potential bio-sensing applications. Here, a novel terahertz sensor was developed for enhancing the ability to detect biomolecules based on two electromagnetically induced transparency (EIT) metamaterials coupled with gold nanoparticles (AuNPs) integrated with biomolecules. The electrostatic interaction between AuNPs and positively charged biomolecules generates localized field enhancement at the biomolecule–metamaterial interface, resulting in a threefold increase in sensitivity for positively charged histidine that exhibit weak dielectric property changes with varying concentration. As a contrast, glucose shows a weaker effect due to its electrostatically neutral nature. Experimental studies reveal that by evaluating the modulation depth (MD) and modulation enhancement (ME) factors of the transmission peak for histidine and glucose in the presence of AuNPs, we achieve and enhance intuitive detection and discrimination of these biomolecules. Additionally, a two-EIT metamaterial with a 1 × 2 pixel array enables multiparameter imaging, visualizing the concentration and spatial distribution of biomolecules. Our results not only significantly improve the response sensitivity of biomolecules with weak dielectric properties in the terahertz domain, but also provide a new idea for developing high-sensitivity functionalized terahertz biosensors and advancing multi-biomolecular analysis and imaging techniques.https://doi.org/10.1038/s41598-025-93850-4Terahertz metamaterialGold nanoparticlesElectrostatic-enhancedBiomolecules detection
spellingShingle Min Zhang
Liwen Jiang
Shuo Wang
Shoujun Zhang
Meng Liu
Yuping Zhang
Huiyun Zhang
Zhen Tian
Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
Scientific Reports
Terahertz metamaterial
Gold nanoparticles
Electrostatic-enhanced
Biomolecules detection
title Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
title_full Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
title_fullStr Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
title_full_unstemmed Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
title_short Electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
title_sort electrostatic enhanced terahertz metamaterial biosensing via gold nanoparticles integrated with biomolecules
topic Terahertz metamaterial
Gold nanoparticles
Electrostatic-enhanced
Biomolecules detection
url https://doi.org/10.1038/s41598-025-93850-4
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AT liwenjiang electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT shuowang electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT shoujunzhang electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT mengliu electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT yupingzhang electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT huiyunzhang electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules
AT zhentian electrostaticenhancedterahertzmetamaterialbiosensingviagoldnanoparticlesintegratedwithbiomolecules