4.6 Article

Combined Pulsed RF GD-OES and HAXPES for Quantified Depth Profiling through Coatings

期刊

COATINGS
卷 11, 期 6, 页码 -

出版社

MDPI
DOI: 10.3390/coatings11060702

关键词

pulsed RF GD-OES; XPS; HAXPES; depth profiling; crater chemistry; plasma-induced perturbation; InP; metrology; quantitative analyses

资金

  1. Henry Royce Institute
  2. EPSRC [EP/R00661X/1, EP/P025021/1, EP/P025498/1]

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The study developed a method combining pulsed RF GD-OES and XPS to achieve accurate chemical analysis at deeply buried locations. Sampling below the perturbed layer using a higher energy excitation source was demonstrated, offering a new route for advanced chemical depth profiling.
Chemical characterization at buried interfaces is a real challenge, as the physico-chemical processes operating at the interface govern the properties of many systems and devices. We have developed a methodology based on the combined use of pulsed RF GD-OES (pulsed Radio Frequency Glow Discharge Optical Emission Spectrometry) and XPS (X-ray Photoelectron Spectroscopy) to facilitate the access to deeply buried locations (taking advantage of the high profiling rate of the GD-OES) and perform an accurate chemical diagnosis using XPS directly inside the GD crater. The reliability of the chemical information is, however, influenced by a perturbed layer present at the surface of the crater, hindering traditional XPS examination due to a relatively short sampling depth. Sampling below the perturbed layer may, however, can be achieved using a higher energy excitation source with an increased sampling depth, and is enabled here by a new laboratory-based HAXPES (Hard X-ray PhotoElectron Spectroscopy) (Ga-K alpha, 9.25 keV). This new approach combining HAXPES with pulsed RF GD-OES requires benchmarking and is here demonstrated and evaluated on InP. The perturbed depth is estimated and the consistency of the chemical information measured is demonstrated, offering a new route for advanced chemical depth profiling through coatings and heterostructures.

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