Tailoring Light–Matter Interactions in Overcoupled Resonator for Biomolecule Recognition and Detection

IF 26.6 1区 材料科学 Q1 Engineering Nano-Micro Letters Pub Date : 2024-09-26 DOI:10.1007/s40820-024-01520-3
Dongxiao Li, Hong Zhou, Zhihao Ren, Cheng Xu, Chengkuo Lee
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Abstract

Plasmonic nanoantennas provide unique opportunities for precise control of light–matter coupling in surface-enhanced infrared absorption (SEIRA) spectroscopy, but most of the resonant systems realized so far suffer from the obstacles of low sensitivity, narrow bandwidth, and asymmetric Fano resonance perturbations. Here, we demonstrated an overcoupled resonator with a high plasmon-molecule coupling coefficient (μ) (OC-Hμ resonator) by precisely controlling the radiation loss channel, the resonator-oscillator coupling channel, and the frequency detuning channel. We observed a strong dependence of the sensing performance on the coupling state, and demonstrated that OC-Hμ resonator has excellent sensing properties of ultra-sensitive (7.25% nm−1), ultra-broadband (3–10 μm), and immune asymmetric Fano lineshapes. These characteristics represent a breakthrough in SEIRA technology and lay the foundation for specific recognition of biomolecules, trace detection, and protein secondary structure analysis using a single array (array size is 100 × 100 µm2). In addition, with the assistance of machine learning, mixture classification, concentration prediction and spectral reconstruction were achieved with the highest accuracy of 100%. Finally, we demonstrated the potential of OC-Hμ resonator for SARS-CoV-2 detection. These findings will promote the wider application of SEIRA technology, while providing new ideas for other enhanced spectroscopy technologies, quantum photonics and studying light–matter interactions.

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在超耦合共振器中定制光-物质相互作用,实现生物分子识别和检测
质子纳米天线为精确控制表面增强红外吸收(SEIRA)光谱中的光物质耦合提供了独特的机会,但迄今为止实现的大多数谐振系统都存在灵敏度低、带宽窄和非对称法诺谐振扰动等障碍。在这里,我们通过精确控制辐射损耗通道、谐振器-振荡器耦合通道和频率失谐通道,展示了一种具有高等离子体-分子耦合系数 (μ)的过耦合谐振器(OC-Hμ 谐振器)。我们观察到了传感性能对耦合状态的强烈依赖性,并证明了 OC-Hμ 谐振器具有超灵敏(7.25% nm-1)、超宽带(3-10 μm)和免疫非对称法诺线形的优异传感特性。这些特性代表了 SEIRA 技术的突破,为使用单个阵列(阵列尺寸为 100 × 100 µm2)进行生物分子特异性识别、痕量检测和蛋白质二级结构分析奠定了基础。此外,在机器学习的帮助下,混合物分类、浓度预测和光谱重建的准确率最高达到了 100%。最后,我们证明了 OC-Hμ 共振在 SARS-CoV-2 检测方面的潜力。这些发现将促进 SEIRA 技术的广泛应用,同时也为其他增强光谱技术、量子光子学和研究光物质相互作用提供了新思路。
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来源期刊
Nano-Micro Letters
Nano-Micro Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
32.60
自引率
4.90%
发文量
981
审稿时长
1.1 months
期刊介绍: Nano-Micro Letters is a peer-reviewed, international, interdisciplinary, and open-access journal published under the SpringerOpen brand. Nano-Micro Letters focuses on the science, experiments, engineering, technologies, and applications of nano- or microscale structures and systems in various fields such as physics, chemistry, biology, material science, and pharmacy.It also explores the expanding interfaces between these fields. Nano-Micro Letters particularly emphasizes the bottom-up approach in the length scale from nano to micro. This approach is crucial for achieving industrial applications in nanotechnology, as it involves the assembly, modification, and control of nanostructures on a microscale.
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