H2020Individual fellowship2021–2023

BIOSIC · Biopolymer based Single-Ion Conducting Gel Polymer Electrolytes for Highly Performant and more Sustainable Batteries

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2021-09-01 → 2023-10-01
EU contribution
€162,806
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Biopolymer based Single-Ion Conducting Gel Polymer Electrolytes for Highly Performant and more Sustainable Batteries

Today’s lithium (Li)-ion batteries play an important role in our society; they are everywhere in our daily life from our smartphones, laptops, and E-bikes to our electric cars. However, the rapidly growing Li-ion battery industry places high pressure on raw materials production such as Li, cobalt, and nickel - needed for electrode preparation. These materials are not only scarcer but also not globally distributed, posing significant geopolitical issues. Furthermore, Li-ion battery accidents have recently become more common, which is closely related to the electrolyte composition. To properly ensure safe batteries, the development of safer and more environmentally-friendly ‘green’ electrolytes is urgently needed. The research aim of this project is to create performant sustainable electrolytes from bio-sourced, abundant, reliable and low-cost materials. This project addressed electrolyte design and development of aqueous Zinc-ion battery (ZIB) – a highly promising battery chemistry for large-scale applications. Indeed ZIBs have the capability to revolutionize the energy storage industry, due to their cost and scalability compared to Li-ion technology. However, a significant challenge facing ZIB technology lies in their limited compatibility of Zn anode with conventional aqueous electrolytes. This issue primarily stems from the undesired water decomposition that occurs during the zinc plating process during battery cycling. More precisely, the primary innovation of this project lies in the creation of sustainable electrolytes, presented in the form of gel biopolymers and aqueous liquid electrolytes, surpassing the capabilities of existing electrolytes. The gel polymer, derived from a charged chitin polymer, demonstrates significant enhancements of Zn metal stability. Additionally, the developed aqueous eutectic electrolytes not only enhance battery performance but also exhibit compatibility improvement with various battery components. Furthermore, the approach of this electrolyte, based on the Brønsted-Lowry concept, exhibits versatility with different types of salts. This work presents an efficient, simple, and low-cost strategy for the development of aqueous electrolytes for the practical application of zinc batteries.

Data: CORDIS, © European Union

Project objective

To properly ensure safe batteries, the development of safer and more environmentally-friendly ‘green’ electrolytes is urgently needed. The research aim of this project is to create performant single-ion conducting gel polymer electrolytes (SIC GPEs) from bio-sourced, abundant, reliable and low-cost materials such as cellulose, chitosan, agarose and alginate. This fellowship will address the electrolyte development from raw material to its application in a sodium-ion battery. The success of this proposal will be achieved by combining the knowledge and expertise of different laboratories. The synthesis and characterisation of the electrolyte will be realised at the Max Planck Institute of Colloids and Interfaces (MPIKG), Germany, where the fellow will be hosted under the supervision of Prof. Markus Antonietti. The advanced electrochemistry analysis will be carried out during the fellow’s secondments at Institute of Materials Science of Barcelona (ICMAB), Spain, with Prof. Rosa Palacín and Dr. Alexandre Ponrouch. The implications of practical realisation will be evaluated by Volvo Cars Corporation, Sweden, under the mentoring of Dr. Hanna Bryngelsson. The fellow will ensure the connection between the different laboratories’ expertise and will so also extend each partner’s research focus. During the 2-year project, the fellow and mentors will disseminate their results to both industry, academia and the general public through patents as well as articles in newspapers and scientific journals.

Original text from CORDIS.

Participants

  • MAX-PLANCK-GESELLSCHAFT ZUR FORDERUNG DER WISSENSCHAFTEN EV · MUNCHENCoordinatorGermany

Links

Data: CORDIS, © European Union