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Supplementary information files for "Secondary electron hyperspectral imaging of carbons: New insights and good practice guide"

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posted on 2025-07-07, 09:45 authored by James F. Nohl, Nicholas T.H. Farr, Maria Rosaria Acocella, Alexander J. Knight, Gareth M. Hughes, Jingqiong Zhang, Stuart RobertsonStuart Robertson, Stuart Micklethwaite, Sean Murphy, Tereza Motlová, Christopher Walker, Alexander I Tartakovskii, Filip Mika, Zuzana Pokorná, Steve Tear, Andrew Pratt, Nancy L. Ford, Nicole Hondow, Mark JepsonMark Jepson, Lyudmila S. Mihaylova, Nik Reeves-McLaren, Serena A. Cussen, Cornelia Rodenburg
<p dir="ltr">Supplementary information files for article "Secondary electron hyperspectral imaging of carbons: New insights and good practice guide"<br><br>Energy storage technologies such as lithium-ion batteries (LIBs) incorporate carbon components key to their function. Graphite and carbon binder components in LIB electrodes are engineered to deliver critical electrical and mechanical properties, as are the surface chemistry and morphology of carbon blacks (CBs) in LIBs and catalysts. The challenge of relating surface chemistry to morphology is complicated by the numerous forms of carbon bonding and potential for surface functional groups. Furthermore, materials processing can influence bonding and structure of carbon at multiple length scales, as seen in mechanochemical functionalization of CBs. To understand the nature of carbon surfaces, secondary electron hyperspectral imaging (SEHI) is introduced as a spatially resolved analysis bridging the nano to microscale. The ability to provide novel insights is demonstrated three example applications: observation of nanoscale “satellite” particles of amorphous hydrogenated carbon on graphitic CB particles, differentiation between graphitic and amorphous hydrogenated nano-thickness carbon coatings on particles of lithium iron phosphate, and differentiation between graphitic carbon active material and carbon binder domain in a LIB anode material. SEHI analysis using peak fitting models for graphitic and disordered carbons is developed based on reference materials and standard spectroscopic methods: Raman spectroscopy and X-ray photoelectron spectroscopy.<br><br>© The Author(s), CC BY 4.0</p>

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SEE MORE MAKE MORE: Secondary Electron Energy Measurement Optimisation for Reliable Manufacturing of Key Materials

Engineering and Physical Sciences Research Council

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SEE MORE MAKE MORE: Secondary Electron Energy Measurement Optimised for Reliable Manufacture of Key Materials: Opportunity, Realisation, Exploitation

Engineering and Physical Sciences Research Council

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See More Make More: Secondary Electron Energy Measurement Optimised for Reliable Manufacture of Key Materials: Opportunity, Realisation, Exploitation

Engineering and Physical Sciences Research Council

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See More Make More: Secondary Electron Energy Measurement Optimised for Reliable Manufacture of Key Materials: Opportunity, Realisation, Exploitation

Engineering and Physical Sciences Research Council

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Sir Henry Royce Institute - Oxford Equipment

Engineering and Physical Sciences Research Council

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Underpinning Multi-User Equipment

Engineering and Physical Sciences Research Council

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Near-Field Optical Spectroscopy Centre at Sheffield, NOSC

Engineering and Physical Sciences Research Council

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Canada Foundation for Innovation

British Columbia Knowledge Development Foundation

UBC Faculty of Dentistry

European Cooperation in Science and Technology. Grant Number: FIT4NANO (CA19140)

Ministerstvo Školství, Mládeže a Tělovýchovy. Grant Number: LM2023050

Akademie Věd České Republiky. Grant Numbers: RVO:68081731, StrategyAV2

Faraday Institution. Grant Numbers: FITG028-B, FutureCat(FIRG017)

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