Simulating the Feasibility of Using Liquid Micro-Jets for Determining Electron-Liquid Scattering Cross-Sections.
Dale L MuccignatPeter W StokesDaniel G CocksJason R GascookeDarryl B JonesMichael J BrungerRonald D WhitePublished in: International journal of molecular sciences (2022)
The extraction of electron-liquid phase cross-sections (surface and bulk) is proposed through the measurement of (differential) energy loss spectra for electrons scattered from a liquid micro-jet. The signature physical elements of the scattering processes on the energy loss spectra are highlighted using a Monte Carlo simulation technique, originally developed for simulating electron transport in liquids. Machine learning techniques are applied to the simulated electron energy loss spectra, to invert the data and extract the cross-sections. The extraction of the elastic cross-section for neon was determined within 9% accuracy over the energy range 1-100 eV. The extension toward the simultaneous determination of elastic and ionisation cross-sections resulted in a decrease in accuracy, now to within 18% accuracy for elastic scattering and 1% for ionisation. Additional methods are explored to enhance the accuracy of the simultaneous extraction of liquid phase cross-sections.
Keyphrases
- simultaneous determination
- ionic liquid
- monte carlo
- machine learning
- liquid chromatography tandem mass spectrometry
- density functional theory
- physical activity
- big data
- oxidative stress
- mental health
- high performance liquid chromatography
- electronic health record
- electron transfer
- data analysis
- solid phase extraction