Structural Positive Electrodes Engineered for Multifunctionality
Artikel i vetenskaplig tidskrift, 2024

Multifunctional structural batteries are of high and emerging interest in a wide variety of high-strength and lightweight applications. Structural batteries typically use pristine carbon fiber as the negative electrode, functionalized carbon fiber as the positive electrode, and a mechanically robust lithium-ion transporting electrolyte. However, electrochemical cycling of carbon fibre-based positive electrodes is still limited to tests in liquid electrolytes, which does not allow for to introduction of multifunctionality in real terms. To overcome these limitations, structural batteries with a structural battery electrolyte (SBE) are developed. This approach offers massless energy storage. The electrodes are manufactured using economically friendly, abundant, cheap, and non-toxic iron-based materials like olivine LiFePO4. Reduced graphene oxide, renowned for its high surface area and electrical conductivity, is incorporated to enhance the ion transport mechanism. Furthermore, a vacuum-infused solid-liquid electrolyte is cured to bolster the mechanical strength of the carbon fibers and provide a medium for lithium-ion migration. Electrophoretic deposition is selected as a green process to manufacture the structural positive electrodes with homogeneous mass loading. A specific capacity of 112 mAh g−1 can be reached at C/20, allowing the smooth transport of Li-ion in the presence of SBE. The modulus of positive electrodes exceeded 80 GPa. Structural battery-positive half-cells are demonstrated across various mass-loadings, enabling them to be tailored for a diverse array of applications in consumer technology, electric vehicles, and aerospace sectors.

reduced graphene oxide

carbon fibre

structural batteries

lithium-iron phosphate

lithium-ion batteries

electrophoretic deposition

Författare

Richa Chaudhary

Wallenberg Initiative Materials Science for Sustainability

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Amit Chetry

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Johanna Xu

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Zhenyuan Xia

Chalmers, Industri- och materialvetenskap, Material och tillverkning

Leif Asp

Wallenberg Initiative Materials Science for Sustainability

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Advanced Science

2198-3844 (ISSN) 21983844 (eISSN)

Vol. In Press

Utveckling av strukturella batterier

United States Air Force (USAF) (Award # FA8655-21-1-7038), 2021-09-01 -- 2024-08-31.

Ämneskategorier

Infrastrukturteknik

Materialkemi

Kompositmaterial och -teknik

Den kondenserade materiens fysik

Styrkeområden

Materialvetenskap

DOI

10.1002/advs.202404012

Mer information

Senast uppdaterat

2024-07-25