首页> 外文期刊>ACS applied materials & interfaces >Ultrathin Hexagonal PbO Nanosheets Induced by Laser Ablation in Water for Chemically Trapping Surface-Enhanced Raman Spectroscopy Chips and Detection of Trace Gaseous H2S
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Ultrathin Hexagonal PbO Nanosheets Induced by Laser Ablation in Water for Chemically Trapping Surface-Enhanced Raman Spectroscopy Chips and Detection of Trace Gaseous H2S

机译:通过激光烧蚀在水中化学捕获表面增强拉曼光谱芯片的超薄六方PBO纳米片和痕量气态H2S的检测

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摘要

Lead oxide (PbO) nanosheets are of significance in the design of functional devices. However, facile, green, and fast fabrication of ultrathin and homogenous PbO nanosheets with a chemically clean surface is still desirable. Herein, a simple and chemically clean route is developed for fabricating such nanosheets via laser ablation of a lead target in water for a short time and then ambient aging. The obtained PbO nanosheets are (002)-oriented with microsize in planar dimension and similar to 15 nm in thickness. They are mostly hexagonal in shape. Experimental observations of the morphological evolution have revealed that the formation of such PbO nanosheets can be attributed to two processes: (i) laser ablation-induced formation of ultrafine Pb and PbO nanoparticles (NPs) and (ii) PbO NP aggregation and their oriented connection growth. Importantly, a composite surface-enhanced Raman spectroscopy (SERS) chip is designed and fabricated by covering a PbO nanosheet monolayer on a Au NP film. Such a composite SERS chip can be used for the fast and trace detection of gaseous H2S in which the PbO nanosheets can effectively chemically trap H2S molecules, demonstrating a new application of these PbO nanosheets. The response of this chip to H2S can be detected within 10 s, and the detection limit is below 1 ppb. Also, this PbO nanosheet-based chip is reusable by heating after use. This study not only deepens the understanding of the NP-based formation mechanism of nanosheets but also provides the renewable SERS chips for the highly efficient detection of trace gaseous H2S.
机译:氧化铅(PBO)纳米片在功能装置的设计中具有重要意义。然而,仍然需要容易,绿色和快速制造超薄和均匀的PBO纳米片仍然是理想的。在此,开发了一种简单且化学上清洁的路线,用于通过激光烧蚀在水中的激光烧蚀在水中进行短时间,然后环境衰老。所获得的PBO纳米片是(002) - 以平面尺寸的微化,厚度类似于15nm。它们主要是六角形的形状。形态学进化的实验观察表明,这种PBO纳米片的形成可归因于两种方法:(i)激光烧蚀诱导的超细Pb和PbO纳米颗粒(NPS)和(II)PbO NP聚集和定向连接生长。重要的是,通过在Au NP膜上覆盖PbO纳米片单层设计和制造复合表面增强拉曼光谱(SERS)芯片。这种复合SERS芯片可用于快速和痕量的气态H2S检测,其中PBO纳米片可以有效地化学捕获H2S分子,证明了这些PBO纳米片的新应用。可以在10秒内检测该芯片到H2S的响应,并且检测限低于1 ppb。此外,这种基于PBO纳米片的芯片通过使用后通过加热可重复使用。这项研究不仅加深了对纳米片的基于NP的形成机制的理解,而且还为可再生的SERS芯片提供了高效检测痕量气态H2S。

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  • 来源
    《ACS applied materials & interfaces》 |2020年第20期|共10页
  • 作者单位

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Hefei 230031 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    ultrathin hexagonal PbO nanosheets; laser ablation in water; chemically trapping SERS chip; trace detection of gaseous H2S; reusable performance;

    机译:超薄六角形PBO纳米蛋白酶;在水中激光烧蚀;化学捕获SERS芯片;痕量检测气态H2S;可重复使用的性能;

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