Electron scattering by biomass molecular fragments: useful data for plasma applications?

Recent data obtained for electron scattering by biomass molecular fragments, indicated that low-energy resonances may have an important role in the de-lignification of biomass through a plasma pre-treatment. To support these findings, we present new experimental evidence of the predicted dissociatio...

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Veröffentlicht in:The European physical journal. D, Atomic, molecular, and optical physics Atomic, molecular, and optical physics, 2016-08, Vol.70 (8), p.1-12, Article 161
Hauptverfasser: Ridenti, Marco A., Filho, Jayr Amorim, Brunger, Michael J., da Costa, Romarly F., Varella, Márcio T. do N., Bettega, Márcio H.F., Lima, Marco A.P.
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container_title The European physical journal. D, Atomic, molecular, and optical physics
container_volume 70
creator Ridenti, Marco A.
Filho, Jayr Amorim
Brunger, Michael J.
da Costa, Romarly F.
Varella, Márcio T. do N.
Bettega, Márcio H.F.
Lima, Marco A.P.
description Recent data obtained for electron scattering by biomass molecular fragments, indicated that low-energy resonances may have an important role in the de-lignification of biomass through a plasma pre-treatment. To support these findings, we present new experimental evidence of the predicted dissociation pathways on plasma treatment of biomass. An important question is how accurate must the experimental and/or the theoretical data be in order to indicate that plasma modelings can be really useful in understanding plasma applications? In this paper, we initiate a discussion on the role of data accuracy of experimental and theoretical electron-molecule scattering cross sections in plasma modeling. First we review technological motivations for carrying out electron-molecule scattering studies. Then we point out the theoretical and experimental limitations that prevent us from obtaining more accurate cross sections. We present a few examples involving biomass molecular fragments, to illustrate theoretical inaccuracies on: resonances positions and widths, electronic excitation, superelastic cross sections from metastable states and due to multichannel effects on the momentum transfer cross sections. On the experimental side we briefly describe challenges in making absolute cross sections measurements with biomass species and radicals. And finally, through a simulation of a N 2 plasma, we illustrate the impact on the simulation due to inaccuracies on the resonance positions and widths and due to multichannel effects on the momentum transfer cross sections. Graphical abstract
doi_str_mv 10.1140/epjd/e2016-70272-8
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We present a few examples involving biomass molecular fragments, to illustrate theoretical inaccuracies on: resonances positions and widths, electronic excitation, superelastic cross sections from metastable states and due to multichannel effects on the momentum transfer cross sections. On the experimental side we briefly describe challenges in making absolute cross sections measurements with biomass species and radicals. And finally, through a simulation of a N 2 plasma, we illustrate the impact on the simulation due to inaccuracies on the resonance positions and widths and due to multichannel effects on the momentum transfer cross sections. 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Then we point out the theoretical and experimental limitations that prevent us from obtaining more accurate cross sections. We present a few examples involving biomass molecular fragments, to illustrate theoretical inaccuracies on: resonances positions and widths, electronic excitation, superelastic cross sections from metastable states and due to multichannel effects on the momentum transfer cross sections. On the experimental side we briefly describe challenges in making absolute cross sections measurements with biomass species and radicals. And finally, through a simulation of a N 2 plasma, we illustrate the impact on the simulation due to inaccuracies on the resonance positions and widths and due to multichannel effects on the momentum transfer cross sections. 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subjects Applications of Nonlinear Dynamics and Chaos Theory
Atomic
Biomass
Biomass energy production
Electrons
Fragments
Metastable state
Molecular
Momentum transfer
Nitrogen plasma
Optical and Plasma Physics
Physical Chemistry
Physics
Physics and Astronomy
Plasma
Pretreatment
Quantum Information Technology
Quantum Physics
Regular Article
Resonance scattering
Scattering cross sections
Spectroscopy/Spectrometry
Spintronics
Superelasticity
Topical Issue: Advances in Positron and Electron Scattering
title Electron scattering by biomass molecular fragments: useful data for plasma applications?
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