Accessing Mg‐Ion Storage in V2PS10 via Combined Cationic‐Anionic Redox with Selective Bond Cleavage

Author:

Wright Matthew A.12ORCID,Surta T. Wesley1ORCID,Evans Jae A.1ORCID,Lim Jungwoo12ORCID,Jo Hongil1ORCID,Hawkins Cara J.1ORCID,Bahri Mounib3ORCID,Daniels Luke M.1ORCID,Chen Ruiyong1ORCID,Zanella Marco1,Chagas Luciana G.4,Cookson James4,Collier Paul4,Cibin Giannantonio5ORCID,Chadwick Alan V.6ORCID,Dyer Matthew S.1ORCID,Browning Nigel D.37ORCID,Claridge John B.1ORCID,Hardwick Laurence J.12ORCID,Rosseinsky Matthew J.1ORCID

Affiliation:

1. Department of Chemistry University of Liverpool L69 7ZD Liverpool UK

2. Stephenson Institute for Renewable Energy University of Liverpool L69 7ZF Liverpool UK

3. Albert Crewe Centre University of Liverpool Research Technology Building, Elisabeth Street, Pembroke Place L69 3GE Liverpool UK

4. Johnson Matthey Technology Centre Sonning Common RG4 9NH Reading UK

5. Diamond Light Source Harwell Science and Innovation Campus OX11 0DE Didcot UK

6. School of Physical Sciences University of Kent CT2 7NH Canterbury UK

7. School of Engineering Department of Mechanical, Materials and Aerospace Engineering University of Liverpool L69 3GH Liverpool UK

Abstract

AbstractMagnesium batteries attract interest as alternative energy‐storage devices because of elemental abundance and potential for high energy density. Development is limited by the absence of suitable cathodes, associated with poor diffusion kinetics resulting from strong interactions between Mg2+ and the host structure. V2PS10 is reported as a positive electrode material for rechargeable magnesium batteries. Cyclable capacity of 100 mAh g−1 is achieved with fast Mg2+ diffusion of 7.2 10−11–4 10−14 cm2 s−1. The fast insertion mechanism results from combined cationic redox on the V site and anionic redox on the (S2)2− site; enabled by reversible cleavage of S−S bonds, identified by X‐ray photoelectron and X‐ray absorption spectroscopy. Detailed structural characterisation with maximum entropy method analysis, supported by density functional theory and projected density of states analysis, reveals that the sulphur species involved in anion redox are not connected to the transition metal centres, spatially separating the two redox processes. This facilitates fast and reversible Mg insertion in which the nature of the redox process depends on the cation insertion site, creating a synergy between the occupancy of specific Mg sites and the location of the electrons transferred.

Funder

Engineering and Physical Sciences Research Council

Faraday Institution

Publisher

Wiley

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