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Zinc Ion Batteries: Structural ENgineering for Severe Environment (SENSE)

Lead Research Organisation: UNIVERSITY COLLEGE LONDON
Department Name: Chemistry

Abstract

Clean energy needs to be stored in an efficient and safe configuration to help improve the environment. Li-ion batteries still dominate the electrochemical energy storage market, however, they have disadvantages of relatively high cost, potential explosion and complicated manufacture. The demands for more sustainable and safer battery technologies are constantly increasing and the utilisation of energy storage devices under severe environments are required to satisfy practical applications. Aqueous battery systems have remarkable potential as next-generation energy storage devices because the cost of raw materials can be reduced, the battery can be fabricated in a more sustainable and facile process and explosive accidents can be avoided. Zn-ion batteries in aqueous/hydrogel electrolyte are favourable candidates due to their relatively low cost and safety advantages. Importantly, Zn-ion batteries can be a ready-to-use technique for all battery companies as they can use the same battery fabrication facilities as Li-ion batteries. However, the specific capacity, energy and power density of current Zn-ion batteries are restricted due to the relatively large hydrated zinc ions and high polarization of bivalent zinc ions. Therefore, the development on the cathodes of Zn-ion batteries have been motivated. Manganese oxide-based materials are favourable due to their suitable structures, abundant and cost-effective properties, environmentally friendly nature and a large working voltage window. But the problems such as limited intercalated channels, poor stability during battery charge/discharge processes, unclarified and complicated mechanism and low electron conductivity of manganese oxide-based cathodes need to be solved, thus the innovation of structures for manganese oxide-based cathodes calls for further exploration. In the SENSE project, manganese-based cathode materials coupled with suitable hydrogel electrolytes for Zn-ion batteries will be designed via multi-level structural engineering to utilise them under harsh conditions, for the purpose of innovating inexpensive and high-performance devices. Through collaborations with both academic and industrial partners, state-of-the-art materials and device characterisation techniques will be used to understand the underlying mechanisms for battery behaviours.

After successfully fulfilling SENSE, Zn-ion batteries can exhibit a volumetric energy density of > 650 Wh L-1 and a power density of > 220 W L-1. The energy price of which can be estimated as £50/kWh, lower than that of Li-ion batteries (£126/kWh), and Ni-Fe batteries (£58/kWh). Therefore, SENSE will not only help advance the quality of battery research and innovative efforts in the UK, but also strengthen and stimulate the development of new technologies in the UK battery industry.

Publications

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Related Projects

Project Reference Relationship Related To Start End Award Value
EP/V027433/1 30/09/2021 31/01/2022 £386,153
EP/V027433/2 Transfer EP/V027433/1 01/02/2022 30/08/2022 £362,712
EP/V027433/3 Transfer EP/V027433/2 01/12/2022 31/12/2024 £362,712
 
Description High-performance and stable pre-intecalated Mn-based cathode materials are achieved. Cost-effective electrolytes and binders were developed. These materials have great potentials to replace expensive and toxic materials, such as Fluroine-containing binders in previous studies.
Detailed electrode-electrolyte interface studies guide the future design of robust interface, and will provide in-depth insights for the field.
Exploitation Route The promising materials and processes can be further used by industrial partners. New collaboration about mass-production of cathodes is built with Prosemino.
Sectors Energy

 
Description Invited talk to Ramsay Society Freshers Hackathon. The findings were presented to general audience. The scale-up routes for promising materials are investigated via the collaboration with industrial partners.
First Year Of Impact 2023
Sector Energy
Impact Types Societal

Economic

 
Description Community Boards Member, Materials Horizons and Nanoscale Horizons (RSC Journals)
Geographic Reach Multiple continents/international 
Policy Influence Type Participation in a guidance/advisory committee
 
Description UCL-SJTU Strategic Partner Funds Panel Member
Geographic Reach Multiple continents/international 
Policy Influence Type Participation in a guidance/advisory committee
 
Description Aqueous zinc-ion batteries
Amount € 1,499,996 (EUR)
Funding ID 101077226 
Organisation European Research Council (ERC) 
Sector Public
Country Belgium
Start 03/2023 
End 03/2028
 
Description B-DECENT: Breakthrough Anode-less Rechargeable Aqueous Zinc-ion Batteries
Amount £1,270,408 (GBP)
Funding ID EP/Y008707/1 
Organisation Engineering and Physical Sciences Research Council (EPSRC) 
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Description CONACyT/Colombian Government Scholarship
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Description QMUL-CSC studentship
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Organisation Chinese Scholarship Council 
Sector Charity/Non Profit
Country China
Start 08/2022 
End 09/2026
 
Description Collaboration with The University of Hongkong 
Organisation University of Hong Kong
Country Hong Kong 
Sector Academic/University 
PI Contribution contribution of the cathode materials synthesis and fabrication of hydrogel electrolyte.
Collaborator Contribution Microscopic analysis of materials, in-situ/ex-situ battery evaluation by XRD and environmental SEM.
Impact The joint scientific research paper is under preparation.
Start Year 2022
 
Description Collaboration with Wuhan University of Technology 
Organisation Wuhan University of Technology
Country China 
Sector Academic/University 
PI Contribution The joint research outputs are created.
Collaborator Contribution The joint research outputs are created.
Impact A visiting student was funded through China Scholarship Council. The joint research outputs were generated.
Start Year 2022
 
Company Name Element 30 Ltd 
Description  
Year Established 2018 
Impact This company aims to bridge the gap between academic innovation and commercial applications, accelerating the commercialization of Zn battery technologies and translating research into real-world impact.
 
Description Chair of 30th CSCST Annual Conference Organisation Committee 
Form Of Engagement Activity A talk or presentation
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Schools
Results and Impact As the Chair of 30th CSCST Annual Conference Organisation Committee, I organised this conference and more than 150 scholars and postgraduate students attended this conference, which provides platform to share research outcomes and establish cooperation in related subject areas.
Year(s) Of Engagement Activity 2023
 
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Form Of Engagement Activity A formal working group, expert panel or dialogue
Part Of Official Scheme? No
Geographic Reach International
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Results and Impact As a chair of of 30th CSCST Annual Conference Organisation Committee, over 100 scholars attended this conference to share their research outcome.
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