TY - JOUR
T1 - Multiscale Investigation of Sodium-Ion Battery Anodes: Analytical Techniques and Applications
T2 - Multiscale Investigation of Sodium-Ion Battery Anodes: Analytical Techniques and Applications
AU - Schäfer, David
AU - Hankins, Kie
AU - Allion, Michelle
AU - Krewer, Ulrike
AU - Karcher, Franziska
AU - Derr, Laurin
AU - Schuster, Rolf
AU - Maibach, Julia
AU - Mück, Stefan
AU - Kramer, Dominik
AU - Mönig, Reiner
AU - Jeschull, Fabian
AU - Daboss, Sven
AU - Philipp, Tom
AU - Neusser, Gregor
AU - Romer, Jan
AU - Palanisamy, Krishnaveni
AU - Kranz, Christine
AU - Buchner, Florian
AU - Behm, R. Jürgen
AU - Ahmadian, Ali
AU - Kübel, Christian
AU - Mohammad, Irshad
AU - Samoson, Ago
AU - Witter, Raiker
AU - Smarsly, Bernd
AU - Rohnke, Marcus
PY - 2024/1/22
Y1 - 2024/1/22
N2 - The anode/electrolyte interface behavior, and by extension, the overall cell performance of sodium-ion batteries is determined by a complex interaction of processes that occur at all components of the electrochemical cell across a wide range of size- and timescales. Single-scale studies may provide incomplete insights, as they cannot capture the full picture of this complex and intertwined behavior. Broad, multiscale studies are essential to elucidate these processes. Within this perspectives article, several analytical and theoretical techniques are introduced, and described how they can be combined to provide a more complete and comprehensive understanding of sodium-ion battery (SIB) performance throughout its lifetime, with a special focus on the interfaces of hard carbon anodes. These methods target various length- and time scales, ranging from micro to nano, from cell level to atomistic structures, and account for a broad spectrum of physical and (electro)chemical characteristics. Specifically, how mass spectrometric, microscopic, spectroscopic, electrochemical, thermodynamic, and physical methods can be employed to obtain the various types of information required to understand battery behavior will be explored. Ways are then discussed how these methods can be coupled together in order to elucidate the multiscale phenomena at the anode interface and develop a holistic understanding of their relationship to overall sodium-ion battery function.
AB - The anode/electrolyte interface behavior, and by extension, the overall cell performance of sodium-ion batteries is determined by a complex interaction of processes that occur at all components of the electrochemical cell across a wide range of size- and timescales. Single-scale studies may provide incomplete insights, as they cannot capture the full picture of this complex and intertwined behavior. Broad, multiscale studies are essential to elucidate these processes. Within this perspectives article, several analytical and theoretical techniques are introduced, and described how they can be combined to provide a more complete and comprehensive understanding of sodium-ion battery (SIB) performance throughout its lifetime, with a special focus on the interfaces of hard carbon anodes. These methods target various length- and time scales, ranging from micro to nano, from cell level to atomistic structures, and account for a broad spectrum of physical and (electro)chemical characteristics. Specifically, how mass spectrometric, microscopic, spectroscopic, electrochemical, thermodynamic, and physical methods can be employed to obtain the various types of information required to understand battery behavior will be explored. Ways are then discussed how these methods can be coupled together in order to elucidate the multiscale phenomena at the anode interface and develop a holistic understanding of their relationship to overall sodium-ion battery function.
U2 - 10.1002/aenm.202302830
DO - 10.1002/aenm.202302830
M3 - Article
SN - 1614-6832
SP - 2302830 (1)
JO - Advanced Energy Materials
JF - Advanced Energy Materials
M1 - 2302830
ER -