MRS Meetings and Events

 

ES01.07.02 2024 MRS Spring Meeting

Bi-Doped Low-Cost P2 Layered Sodium Ion Battery Cathode with Improved Cycling Stability

When and Where

Apr 24, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Xinsheng Wu1,Jay Whitacre1

Carnegie Mellon University1

Abstract

Xinsheng Wu1,Jay Whitacre1

Carnegie Mellon University1
Sodium-ion batteries, free from material scarcity concerns, offer potential for versatile applications across various industries. However, the development of an optimal cathode material for sodium ion batteries remains a challenge in part due to long term stability issues. Among the various cathode chemistries explored for sodium-ion battery applications, those based on layered transition metal oxides have displayed promise, primarily due to their high energy density and scalability. Our work demonstrated a novel modified P2 layered sodium ion cathode material created via the introduction of bismuth into a manganese and iron-based layered transition metal oxide material, specifically Na<sub>0.8</sub>Mn<sub>0.75</sub>Fe<sub>0.2</sub>Al<sub>0.05</sub>. Our research has demonstrated that even a small amount of bismuth doping can have a profound impact on the cycling stability of this cathode material, both in half cells and also in hard carbon anode full cells. Furthermore, ambient environment storage of the Bi-doped materials (even in humid environments) does not reduce performance and in some cases seems to improve it. This finding holds promise for enhanced feasibility and reliability in sodium-ion batteries and could be beneficial for advancing the application of sodium-ion batteries in large-scale applications.

Symposium Organizers

Jeffrey Cain, General Motors
Zachary Hood, Argonne National Laboratory
Matthew McDowell, Georgia Institute of Technology
Yue Qi, Brown University

Symposium Support

Bronze
Georgia Tech Advanced Battery Center
Vigor Technologies (USA) Inc

Session Chairs

Jeffrey Cain
Zachary Hood
Yue Qi

In this Session

ES01.07.01
A Glycerol Triacetate based Flame Retardant High-Temperature Electrolyte for The Lithium-Ion Battery

ES01.07.02
Bi-Doped Low-Cost P2 Layered Sodium Ion Battery Cathode with Improved Cycling Stability

ES01.07.03
Low-Cost Silicon from Natural Sand for Lithium-Ion Batteries and Its Electrochemical Response to Oxygen Content

ES01.07.05
High-Performance CuO as an Anode Material via Facile Synthesis for Lithium-Ion Batteries

ES01.07.06
Investigation of 3-Dimensional Structured Anodes for Fast Charging in Lithium-Ion Batteries

ES01.07.07
Novel Design and Scalable Synthesis of Silicon Anodes for High-Energy Lithium-Ion Batteries

ES01.07.08
Single-Pot Hydrothermal Synthesis, Characterization and Electrochemical Properties of SnO2 Nanostructures

ES01.07.09
Structure Relaxation Contributes to Spinel-Like Phase Transformation in High-Mn-Content Disordered Rock Salt Cathode Materials

ES01.07.10
A New High-Valent Fe-Based Redox Couple in Intercalation Electrodes

ES01.07.11
Accessing p- and n-type Polyimide Covalent Organic Frameworks via Post-Synthetic Linker Exchange for High-Performance Cathodes in Sodium-Ion Batteries

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