Revolutionlizing Plasmonic Platform via Magnetic Field-Assisted Confined Ultrafast Laser Deposition of High-Density, Uniform, and Ultrafine Nanoparticle Arrays

IF 16.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Extreme Manufacturing Pub Date : 2024-03-05 DOI:10.1088/2631-7990/ad304f
Jin Xu, Lingfeng Wang, Peilin Yang, Haoqing Jiang, Huai Zheng, Li-cong An, Xingtao Liu, G. Cheng
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Abstract

The remarkable capabilities of 2D plasmonic surfaces in controlling optical waves have garnered significant attention. However, the challenge of large-scale manufacturing of uniform, well-aligned, and tunable plasmonic surfaces has hindered their industrialization. To address this, we present a groundbreaking tunable plasmonic platform design achieved through magnetic field (MF) assisted ultrafast laser direct deposition (MAPLD) in air. Through precise control of metal nanoparticles (NPs), with Cobalt (Co) serving as the model material, employing a magnetic field (MF), and fine-tuning ultrafast laser parameters, we have effectively converted coarse and non-uniform NPs into densely packed, uniform, and ultrafine NPs(~3nm). This revolutionary advancement results in the creation of customizable plasmonic 'hot spots,' which play a pivotal role in Surface-enhanced Raman spectroscopy (SERS) sensors. The profound impact of this designable plasmonic platform lies in its close association with plasmonic resonance and energy enhancement. When the plasmonic nanostructures resonate with incident light, they generate intense local electromagnetic fields, thus vastly increasing the Raman scattering signal. This enhancement leads to an outstanding 2 to 18-fold boost in SERS performance and unparalleled sensing sensitivity down to 10-10 M. Notably, the plasmonic platform also demonstrates robustness, retaining its sensing capability even after undergoing 50 cycles of rinsing and re-loading of chemicals. Moreover, this work adheres to green manufacturing standards, making it an efficient and environmentally friendly method for customizing plasmonic 'hot spots' in SERS devices. Our study not only achieves the formation of high-density, uniform, and ultrafine nanoparticle arrays on a tunable plasmonic platform but also showcases the profound relation between plasmonic resonance and energy enhancement. The outstanding results observed in SERS sensors further emphasize the immense potential of this technology for energy-related applications, including photocatalysis, photovoltaics, and clean water, propelling us closer to a sustainable and cleaner future.
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通过磁场辅助封闭式超快激光沉积高密度、均匀和超细纳米粒子阵列,实现质子平台的革命性突破
二维等离子体表面在控制光波方面的卓越能力已引起人们的极大关注。然而,大规模制造均匀、排列整齐和可调谐的等离子表面所面临的挑战阻碍了它们的产业化。为了解决这个问题,我们提出了一种突破性的可调谐质子平台设计,它是通过磁场(MF)辅助超快激光直接沉积(MAPLD)在空气中实现的。通过精确控制以钴(Co)为模型材料的金属纳米粒子(NPs),利用磁场(MF)和微调超快激光参数,我们有效地将粗糙和不均匀的 NPs 转变为密集、均匀和超细的 NPs(约 3 纳米)。这一革命性的进步产生了可定制的等离子 "热点",在表面增强拉曼光谱(SERS)传感器中发挥了关键作用。这种可设计的等离子平台的深远影响在于它与等离子共振和能量增强的密切联系。当等离子纳米结构与入射光发生共振时,它们会产生强烈的局部电磁场,从而大大增加拉曼散射信号。这种增强使 SERS 性能提高了 2 到 18 倍,传感灵敏度低至 10-10 M,无与伦比。值得注意的是,该等离子平台还表现出了坚固性,即使在经历了 50 次冲洗和重新加载化学物质后,仍能保持其传感能力。此外,这项工作还符合绿色制造标准,是在 SERS 设备中定制等离子 "热点 "的高效环保方法。我们的研究不仅实现了在可调等离子平台上形成高密度、均匀和超细纳米粒子阵列,还展示了等离子共振与能量增强之间的深刻关系。在 SERS 传感器中观察到的出色结果进一步强调了该技术在光催化、光伏和清洁水等能源相关应用中的巨大潜力,推动我们向可持续和更清洁的未来迈进。
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来源期刊
International Journal of Extreme Manufacturing
International Journal of Extreme Manufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
17.70
自引率
6.10%
发文量
83
审稿时长
12 weeks
期刊介绍: The International Journal of Extreme Manufacturing (IJEM) focuses on publishing original articles and reviews related to the science and technology of manufacturing functional devices and systems with extreme dimensions and/or extreme functionalities. The journal covers a wide range of topics, from fundamental science to cutting-edge technologies that push the boundaries of currently known theories, methods, scales, environments, and performance. Extreme manufacturing encompasses various aspects such as manufacturing with extremely high energy density, ultrahigh precision, extremely small spatial and temporal scales, extremely intensive fields, and giant systems with extreme complexity and several factors. It encompasses multiple disciplines, including machinery, materials, optics, physics, chemistry, mechanics, and mathematics. The journal is interested in theories, processes, metrology, characterization, equipment, conditions, and system integration in extreme manufacturing. Additionally, it covers materials, structures, and devices with extreme functionalities.
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