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In-Line Ultrasound-Enhanced Raman Spectroscopy Allows for Highly Sensitive Analysis with Improved Selectivity in Suspensions

机译:在线超声波增强拉曼光谱允许高敏感的分析,改善了悬浮液中的选择性

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摘要

Raman spectroscopy is a nondestructive characterization method offering chemical-specific information. However, the cross-section of inelastically (Raman) scattered light is very low compared to elastically (Rayleigh) scattered light, resulting in weak signal intensities in Raman spectroscopy. Despite providing crucial information in off-line measurements, it usually is not sensitive enough for efficient, in-line process control in conjunction with low particle concentrations. To overcome this limitation, two custom-made 1.4404 stainless-steel prototype add-ons were developed for in-line Raman probes that enable ultrasound particle manipulation and thus concentration of particles in suspensions in the focus of the Raman excitation laser. Depending on size and density differences between particles and the carrier medium, particles are typically caught in the nodal planes of a quasi-standing wave field formed in an acoustic resonator in front of the sensor. Two arrangements were realized with regard to the propagation direction of the ultrasonic wave relative to the propagation direction of the laser. The parallel arrangement improved the limit of detection (LOD) by a factor of approximate to 30. In addition to increased sensitivity, the perpendicular arrangement offers increased selectivity: modifying the frequency of the ultrasonic wave field allows the liquid or solid phase to be moved into the focus of the Raman laser. The combination of in-line Raman spectroscopy with ultrasound particle manipulation holds promise to push the limits of conventional Raman spectroscopy, hence broadening its field of application to areas where previously Raman spectroscopy has not had sufficient sensitivity for accurate, in-line detection.
机译:拉曼光谱是一种非破坏性表征方法,提供化学特定信息。然而,与弹性(Rayleigh)散射光相比,内含物(拉曼)散射光的横截面非常低,导致拉曼光谱中的信号强度较弱。尽管提供了在离线测量中的重要信息,但它通常不足以高效,在线过程控制结合低颗粒浓度。为了克服这种限制,开发了两种定制的1.4404不锈钢原型附加物,用于在线拉曼探针,使超声粒子操纵能够在拉曼激光激光器的焦点中悬浮液中的颗粒浓缩。取决于粒子和载体介质之间的尺寸和密度差,通常在传感器前方的声学谐振器中形成的准静置波场的节点捕获。关于超声波相对于激光的传播方向的传播方向实现了两个布置。并联布置将检测(LOD)的极限提高到30的近似值。除了增加的灵敏度之外,垂直布置提供了增加的选择性:改变超声波场的频率允许液体或固相移动到拉曼激光的焦点。在线拉曼光谱与超声粒子操纵的组合保持承担承诺推动常规拉曼光谱的限制,从而将其应用领域扩大到预先拉曼光谱对准确,在线检测没有足够的灵敏度的区域。

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  • 来源
    《Analytical chemistry》 |2019年第22期|共8页
  • 作者单位

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

    TU Wien Inst Chem Technol &

    Analyt Res Div Environm Proc Analyt &

    Sensors A-1060 Vienna Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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