基于光学荧光和二次谐波(SHG)转换过程的高效过氧化氢纳米传感器

IF 2.5 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Nader Shehata, Germein Magdy, Sara Noman, Effat Samir, Mohamed Salah, Remya Nair, Ahmed Alwakeel, Ali Hajjiah, Ishac Kandas
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引用次数: 0

摘要

利用荧光猝灭技术研究了氧化铈-金纳米粒子(CeO2-Au NPs)作为光学传感器的应用范围。在紫光激发下,氧化铈NPs在可见光区(~530 nm)有很强的发射,这清楚地证明了它的强荧光行为。在这里,Au NPs与CeO2 NPs原位嵌入。此外,还研究了聚{1-[对-(3′-羧基-4′-羟基苯基偶氮)苯磺酸胺]-1,2-乙基钠盐}(PCBS)的二次谐波生成(SHG)及其在780 nm发光二极管(LED)激发下的荧光响应。PCBS在过氧化物检测中的Stern-Volmer常数为0.0987 M−1,低于二氧化铈的0.1419 M−1。随后,将该系统应用于水介质中过氧化物的检测领域。荧光强度受到过氧化物加入到CeO2-Au NPs中的影响。Stern-Volmer猝灭常数分别为0.0987 M−1、0.1419 M−1和0.1763 M−1,表明灵敏度提高了26.72%。在过氧化氢猝灭剂检测中,发现添加Au NPs大大提高了铈NPs的灵敏度。这是因为金纳米粒子的等离子体共振与二氧化铈的荧光发射光谱光学耦合。此外,由于在铈的非化学计量晶体结构中产生了更多的氧空位,加入Au NPs后,铈的带隙也减小了。添加过氧化物的氧化铈-金纳米粒子的光学传感材料的灵敏度由Stern-Volmer常数表征,发现其灵敏度为0.1763 M−1,高于仅使用氧化铈纳米粒子的情况。光灵敏度增强的铈金纳米粒子可作为过氧化物的光传感载体,在生物医学、水质监测等领域发挥着重要作用。本文通过集成pcb薄膜的SHG响应和au掺杂CeO2纳米粒子的等离子体增强荧光猝灭行为,介绍了一种新的双模光学传感平台。与纯二氧化铈相比,该组合系统的过氧化物灵敏度提高了26.72%,使其成为一种在水环境中高效、低成本检测的有前途的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Peroxide Nanosensors via Both Optical Fluorescence and Second Harmonic Generation (SHG) Conversion Processes

The scope of using cerium oxide–gold nanoparticles (CeO2–Au NPs) as an optical sensor is studied via the fluorescence quenching technique. Under violet excitation, ceria NPs have a strong emission in the visible region (~530 nm), which clearly proves its strong fluorescent behavior. Here, Au NPs are embedded in situ with CeO2 NPs. In addition, the second harmonic generation (SHG) of poly{1-[p-(3′-carboxy-4′-hydroxyphenylazo)benzenesulfonamido]-1,2-ethandiyl, sodium salt} (PCBS) and its fluorescence response with light emitting diode (LED) excitation at 780 nm were studied. The Stern–Volmer constant of PCBS in peroxide detection is 0.0987 M−1, lower than the value of ceria, which is 0.1419 M−1. Afterwards, the system is applied in the field of peroxide sensing in aqueous media. The fluorescence intensity is found to be affected by the addition of peroxides into CeO2-Au NPs. The Stern–Volmer quenching constants were found to be 0.0987 M−1 for PCBS, 0.1419 M−1 for undoped ceria, and 0.1763 M−1 for Au-doped ceria, indicating a 26.72% enhancement in sensitivity. The sensitivity of ceria NPs in peroxide quencher detection is found to be enhanced considerably by the addition of Au NPs. This is because of the plasmonic resonance of Au NPs as it is optically coupled with the fluorescence emission spectrum of ceria. The bandgap of ceria is also found to be decreased by the addition of Au NPs, which is due to the creation of more oxygen vacancies inside the nonstoichiometric crystalline structure of ceria. The sensitivity of the optical sensing material, ceria–gold NPs with added peroxide, is characterized by the Stern–Volmer constant and is found to be 0.1763 M−1 which is higher than the case of using ceria NPs only. Ceria–gold NPs with enhanced optical sensitivity can be employed as an optical sensing host for peroxides, which plays a major role in many important applications such as biomedicine and water quality monitoring. This work introduces a novel dual-mode optical sensing platform by integrating the SHG response of PCBS thin films and the plasmon-enhanced fluorescence quenching behavior of Au-doped CeO2 nanoparticles. The combined system demonstrates a 26.72% increase in peroxide sensitivity compared with pure ceria, making it a promising approach for efficient, low-cost detection in aqueous environments.

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来源期刊
Journal of Electronic Materials
Journal of Electronic Materials 工程技术-材料科学:综合
CiteScore
4.10
自引率
4.80%
发文量
693
审稿时长
3.8 months
期刊介绍: The Journal of Electronic Materials (JEM) reports monthly on the science and technology of electronic materials, while examining new applications for semiconductors, magnetic alloys, dielectrics, nanoscale materials, and photonic materials. The journal welcomes articles on methods for preparing and evaluating the chemical, physical, electronic, and optical properties of these materials. Specific areas of interest are materials for state-of-the-art transistors, nanotechnology, electronic packaging, detectors, emitters, metallization, superconductivity, and energy applications. Review papers on current topics enable individuals in the field of electronics to keep abreast of activities in areas peripheral to their own. JEM also selects papers from conferences such as the Electronic Materials Conference, the U.S. Workshop on the Physics and Chemistry of II-VI Materials, and the International Conference on Thermoelectrics. It benefits both specialists and non-specialists in the electronic materials field. A journal of The Minerals, Metals & Materials Society.
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