From Powder to Pouch Cell: Setting up a Sodium‐Ion Battery Reference System Based on Na3V2(PO4)3/C and Hard Carbon

Author:

Stüble Pirmin1ORCID,Müller Cedric1ORCID,Bohn Nicole1ORCID,Müller Marcus1ORCID,Hofmann Andreas1ORCID,Akçay Tolga1ORCID,Klemens Julian2,Koeppe Arnd13ORCID,Kolli Satish4ORCID,Rajagopal Deepalaxmi13ORCID,Geßwein Holger1ORCID,Schabel Wilhelm2ORCID,Scharfer Philip2ORCID,Selzer Michael13ORCID,Binder Joachim R.1ORCID,Smith Anna1ORCID

Affiliation:

1. Karlsruhe Institute of Technology (KIT) Institute for Applied Materials (IAM) Hermann-von-Helmholtz-Platz 1 76344 Eggenstein-Leopoldshafen Germany

2. Karlsruhe Institute of Technology (KIT) Thin Film Technology (TFT) Straße am Forum 7 76131 Karlsruhe Germany

3. Karlsruhe Institute of Technology (KIT) Institute of Nanotechnology (INT) Hermann-von-Helmholtz-Platz 1 76344 Eggenstein-Leopoldshafen Germany

4. Helmholtz Institute Ulm (HIU) Helmholtzstraße 11 89081 Ulm Germany

Abstract

AbstractAt the research level, novel active materials for batteries are synthesised on a small scale, fabricated into electrodes and electrochemically characterised using each group's established process due to the lack of standards. Recently, eminent researchers have criticised the implementation of e. g. low active material contents/electrode loadings, the use of research‐type battery cell constructions, or the lack of statistically relevant data, resulting in overstated data and thus giving misleading predictions of the key performance indicators of new battery technologies. Here, we report on the establishment of a reference system for the development of sodium‐ion batteries. Electrodes are fabricated under relevant conditions using 9.5 mg/cm2 self‐synthesised Na3V2(PO4)3/C cathode active material and 3.6 mg/cm2 commercially available hard carbon anode active material. It is found that different types of battery cells are more or less suitable for half‐ and/or full‐cell testing, resulting in ir/reproducible or underestimated active material capacities. Furthermore, the influence of electrode overhang, which is relevant for upscaling, is evaluated. The demonstrator cell (TRL 4–5) has been further characterised providing measured data on the power/energy density and thermal behaviour during rate testing up to 15 C and projections are made for its practical limits.

Publisher

Wiley

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