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Field
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. Strong spectroscopy expertise, including experience with techniques such as photoluminescence, Raman spectroscopy, and X-ray photoelectron spectroscopy. 2. Experience with synthesized or naturally
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synthesis and characterization Plasmonics and optical biosensing Surface-enhanced Raman spectroscopy (SERS) Electrochemical biosensors Biofunctionalization and surface chemistry Microfluidics and lab-on-a
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Previous experience in optics, bioimaging, optical measurement technologies, spectroscopy, Raman spectroscopy and metrology are desirable Strong background in biological imaging principles and optical
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to target enhanced mass transport and energy-storage performance. Conduct advanced in-situ and operando characterisation, including EC-TEM, synchrotron XANES/EXAFS, Raman, FTIR and XPS, to investigate
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, which requires a comprehensive evaluation of their properties. This evaluation involves the use of various techniques, such as FTIR, Raman, thermogravimetric analysis (TG), differential scanning
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: TEM/STEM-EDS, SEM, AFM, XRD, FTIR/Raman spectroscopy, UV–Vis/fluorescence spectroscopy, or ICP-MS/OES analysis. Experience with protein engineering or characterisation is favourable but not required
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fluidic models to interface with appropriate imaging and analytical methods such as optical microscopy, SEM, real-time AFM, Raman microscopy, nano-FTIR. Use the validated models to study the dynamics
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nanomaterials characterization • Hands-on experience with one or more advanced characterization techniques, ideally including atomic force microscopy, ellipsometry, infrared or Raman spectroscopy, light and X-ray
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molecular and sequencing workflows for microbial characterization. The work supports the rapid detection of microbial bioburden in biopharmaceutical cleaning validation using a Surface-Enhanced Raman
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documentation. Develops integrative models of radiation response through the combination of genotype and biomarker data. (Raman, blood marker etc.) Facilitates processes for data transfer and collaboration by