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Meeting 2024 TMS Annual Meeting & Exhibition
Symposium Advanced Real Time Imaging
Presentation Title Enhanced Raman Spectroscopy for Trace Environmental Contaminant Detection and Quantification.
Author(s) Kayode Ibrahim Fesomade, Robert Walker
On-Site Speaker (Planned) Kayode Ibrahim Fesomade
Abstract Scope Vibrational Raman spectroscopy is a technique that can uniquely and quantitatively identify molecules and materials through their distinctive vibrational spectra. As an analytical tool, Raman spectroscopy has been used to tackle challenges related to biomedical imaging, energy conversion, and earth science. Despite Raman spectroscopy’s advantages of fast, reliable, and non-destructive detection, the technique suffers from low sensitivity. This limitation has kept Raman spectroscopy from being used to detect contaminants in atmospheric and aqueous environmental systems. The research described in this presentation describes the adaptation of Cavity Enhanced Raman Spectroscopy (CERS) to detect environmental contaminants in aqueous and atmospheric systems. CERS leverages the advantages of Raman spectroscopy while improving detection limits by more than 3 orders of magnitude. While CERS has been demonstrated for model gas phase systems, it has never before been applied to environmental samples. We will use CERS to quantify aqueous phase contaminants including PFAS, and inorganic ions.
Proceedings Inclusion? Planned:
Keywords Characterization, Environmental Effects, Other

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Correlating Laser Process Conditions to Balling Severity with Time-resolved Synchrotron X-ray Visualization
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Dynamic Imaging of Fast Processes Using Laboratory X-ray Computed Tomography
Effect of Wettability on Penetration and Flotation Behavior of a Particle in Refining Process
Enhanced Raman Spectroscopy for Trace Environmental Contaminant Detection and Quantification.
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In-situ Imaging of Transonic Dislocations & Plasticity
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Interfacial Strength in Microparticle Impact-induced Bonding
Limited Angle X-ray Nanotomography Captures Solidification in 4D
Mechanics of Architected Materials through the Lens of In Situ Characterization
Multimodal Characterization of Sn-Bi Alloy Solidification using Synchrotron X-ray Microtomography and Energy Dispersive Diffraction
Non-destructive Evaluation of Defects and Inclusions in Composite Structures Using Terahertz Time Domain Analysis
Picosecond Laser Ultrasound Spatial and Temporal Tracking of Material Property Changes Under Irradiation
Probing the Dynamics of Materials with Ultrafast Transmission Electron Microscopy
Rapid Solidification of Non-Dilute Binary Alloys: Theory and In Situ Diagnosis
Real-time and In-situ Measurements Using High-speed AFM
Sedimentation of Particles through Foaming Liquid
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Temperature Sensing with Fiber Bragg Gratings Integrated into Stainless Steels by Spark Plasma Sintering
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Ultrafast Synchrotron X-ray Imaging and Modelling of Ultrasound-driven Bubble-particle Dynamics
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Visualization of High Temperature Phenomena at Interface between Metal and Oxide
Visualization of Molten Slag Suspension by Electrical Resistance Tomography
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