Greener, Safer and Better Performing Aqueous Binder for Positive Electrode Manufacturing of Sodium Ion Batteries

Author:

Xu Ruochen12,Pamidi Venkat1ORCID,Tang Yushu34,Fuchs Stefan15,Stein Helge S.15,Dasari Bosubabu13,Zhao‐Karger Zhirong13,Behara Santosh6,Hu Yang1,Trivedi Shivam1,Anji Reddy M.6,Barpanda Prabeer137,Fichtner Maximilian13ORCID

Affiliation:

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

2. Technical University of Munich Lichtenbergstraße 4 85748 Garching, Germany

3. Institute of Nanotechnology Karlsruhe Institute of Technology 76021 Karlsruhe Germany

4. Karlsruhe Nano Micro Facility (KNMF) Karlsruhe Institute of Technology (KIT) Eggenstein-Leopoldshafen Germany

5. Institute of Physical Chemistry (IPC) Karlsruhe Institute of Technology (KIT) Fritz-Haber Weg 2 76131 Karlsruhe Germany

6. Faculty of Science and Engineering Swansea University Fabian Way Swansea SA1 8EN United Kingdom

7. Faraday Materials Laboratory (FaMaL) Materials Research Centre, Indian Institute of Science Bangalore 560012 India

Abstract

AbstractP2‐type cobalt‐free MnNi‐based layered oxides are promising cathode materials for sodium‐ion batteries (SIBs) due to their high reversible capacity and well chemical stability. However, the phase transformations during repeated (dis)charge steps lead to rapid capacity decay and deteriorated Na+ diffusion kinetics. Moreover, the electrode manufacturing based on polyvinylidene difluoride (PVDF) binder system has been reported with severely defluorination issue as well as the energy intensive and expensive process due to the use of toxic and volatile N‐methyl‐2‐pyrrolidone (NMP) solvent. It calls for designing a sustainable, better performing, and cost‐effective binder for positive electrode manufacturing. In this work, we investigated inorganic sodium metasilicate (SMS) as a viable binder in conjunction with P2‐Na0.67Mn0.55Ni0.25Fe0.1Ti0.1O2 (NMNFT) cathode material for SIBs. The NMNFT‐SMS electrode delivered a superior electrochemical performance compared to carboxy methylcellulose (CMC) and PVDF based electrodes with a reversible capacity of ~161 mAh/g and retaining ~83 % after 200 cycles. Lower cell impedance and faster Na+ diffusion was also observed in this binder system. Meanwhile, with the assistance of TEM technique, SMS is suggested to form a uniform and stable nanoscale layer over the cathode particle surface, protecting the particle from exfoliation/cracking due to electrolyte attack. It effectively maintained the electrode connectivity and suppressed early phase transitions during cycling as confirmed by operando XRD study. With these findings, SMS binder can be proposed as a powerful multifunctional binder to enable positive electrode manufacturing of SIBs and to overall reduce battery manufacturing costs.

Publisher

Wiley

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