Watermann, Jonas; Amin, Adil; Wiggers, Hartmut; Segets, Doris; Özcan, Fatih:
Connecting structure and rheology of silicon/carbon supraparticle-based lithium-ion battery anode slurries
In: Powder Technology, Band 426 (2023), Artikel 118627
2023Artikel/Aufsatz in ZeitschriftOA Hybrid
MaschinenbauFakultät für Ingenieurwissenschaften » Maschinenbau und Verfahrenstechnik » Institut für Energie- und Material-Prozesse (EMPI) » Reaktive FluideForschungszentren » Center for Nanointegration Duisburg-Essen (CENIDE)
Damit verbunden: 1 Publikation(en)
Titel in Englisch:
Connecting structure and rheology of silicon/carbon supraparticle-based lithium-ion battery anode slurries
Autor*in:
Watermann, Jonas
;
Amin, AdilUDE
LSF ID
61626
ORCID
0000-0001-8114-3895ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Wiggers, HartmutUDE
GND
172637171
LSF ID
1643
ORCID
0000-0001-8487-9937ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Segets, DorisUDE
GND
1037188012
LSF ID
60252
ORCID
0000-0003-3102-2934ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Özcan, FatihUDE
GND
1262273498
LSF ID
58211
Sonstiges
der Hochschule zugeordnete*r Autor*in
korrespondierende*r Autor*in
Erscheinungsjahr:
2023
Open Access?:
OA Hybrid
Web of Science ID
Scopus ID
Sprache des Textes:
Englisch
Schlagwort, Thema:
Battery slurry rheology ; Deagglomeration of supraparticles ; Silicon-based lithium-ion battery anode ; Thixotropic relaxation time

Abstract in Englisch:

Due to the globally increasing demand for lithium-ion-batteries of high energy density, novel silicon-based materials of hierarchical structure are investigated as a potential replacement for conventional anode materials such as graphite. Since industrial process technologies cannot keep up with the development of new formulations, such approaches should be suited as ”drop-in” methods to the existing manufacturing processes. In this study, spray-dried silicon-based supraparticles of hierarchical structure are investigated regarding their suitability for industrial slurry processing under harsh mechanical conditions. The chosen strategy is to connect the structural integrity of the supraparticles with their time-dependent rheological behavior in anode slurries to provide methods for a mechanical characterization tailored to supraparticles. Apart from questions of battery processing, this study also provides general guidance on the rheology of supraparticle dispersions, which has been little studied so far. Structural kinetic models, experimentally determined thixotropic relaxation times, and a differential effective medium approach tailored for supraparticles are used herein. With this developed rheological toolset, a strong indicator of the mixing fraction of supraparticles and their primary particles inside full anode slurries is presented and the deagglomeration dynamics of the supraparticle structure in shear flow are resolved.