Geoffrey Moorhouse Gibson Professor of Chemistry

Room M21

Materials Chemistry: Structure and Function

We use a wide range of techniques, including solid state NMR and diffraction, to investigate local structure and the role that this plays in controlling the physical properties of technologically important, but disordered materials.

Rechargeable Batteries

New batteries are required for transport applications and for storage and load-leveling on the electrical grid. These batteries should be capable of being charged and discharged faster, and should store much more power, than the batteries currently available. This requires the development of new electrode chemistries and an understanding of how these systems function. To this end, we study a variety of different rechargeable batteries including lithium and sodium ion batteries (LIBs and NIBs).  We probe the mechanisms for lithium insertion and extraction by, for example, using 6Li/7Li NMR and investigate the effect of local structure and electronic properties on LIB battery performance. Two types of electrode materials are investigated, those that operate via intercalation reactions, where the structure remains largely intact upon Li insertion, and those that react via conversion reactions where the structures transform completely upon reaction with Li. In the latter reactions, our studies focus on identifying the nano-sized (or amorphous) phases that form on Li reaction, how they are formed and how to improve the reversibilities of these reactions. Studies of intercalation compounds include the effect of cation doping and ordering on the mechanisms by which these materials react.

In-situ NMR Studies of Battery and Supercapacitor Function

We have developed NMR methodology to monitor structural changes that occur during the operation of a battery/supercapacitor. These in-situ NMR studies allow us to, for example, capture metastable phases, follow reactions between the electrolyte and the electrode materials and to investigate the effect of rapid charging and cycling of the battery.  For supercapacitors, we can, for example, monitor ions entering or leaving the pores of the highly porous materials that form the electrodes of these devices. 

Solid-State Electrolytes for Fuel Cells and Solid State Batteries 

We use NMR to study investigate mechanisms for ionic conduction. By identifying individual crystallographic or interstitial sites in often highly disordered materials, we can determine which sites are responsible for ionic conduction, where the vacancies or interstitial ions are located, and obtain a much deeper understanding of how these materials function as ionic conductors. Studies focus on perovskite materials, which can act as both oxygen and proton (when hydrated) conductors.  We also investigate both oxide and sulphide-based lithium ion conductors for solid state batteries 

Take a tour of the Grey lab facilities

 

Publications

Electrochemical Utilization of Iron IV in the Li1.3Fe0.4Nb0.3O2 Disordered Rocksalt Cathode
Z Lebens‐Higgins, H Chung, I Temprano, M Zuba, J Wu, J Rana, C Mejia, MA Jones, L Wang, CP Grey, Y Du, W Yang, YS Meng, LFJ Piper
Batteries and Supercaps
(2021)
4
High rate lithium ion battery with niobium tungsten oxide anode
Y Kim, Q Jacquet, KJ Griffith, J Lee, S Dey, BLD Rinkel, CP Grey
Journal of the Electrochemical Society
(2021)
168
Mesoscopic simulations of the <i>in situ</i> NMR spectra of porous carbon based supercapacitors: electronic structure and adsorbent reorganisation effects.
A Sasikumar, A Belhboub, C Bacon, AC Forse, JM Griffin, CP Grey, P Simon, C Merlet
Physical Chemistry Chemical Physics
(2021)
23
Combined High-Resolution Solid-State 1H/13C NMR Spectroscopy and 1H NMR Relaxometry for the Characterization of Kerogen Thermal Maturation
F Panattoni, J Mitchell, EJ Fordham, R Kausik, CP Grey, PCMM Magusin
Energy &amp; Fuels
(2020)
35
A Magic Angle Spinning Activated 17O DNP Raser.
MA Hope, S Björgvinsdóttir, CP Grey, L Emsley
The Journal of Physical Chemistry Letters
(2020)
12
Phase Behavior during Electrochemical Cycling of Ni-Rich Cathode Materials for Li-Ion Batteries
C Xu, PJ Reeves, Q Jacquet, CP Grey
Advanced Energy Materials
(2020)
11
Titanium Niobium Oxide: From Discovery to Application in Fast-Charging Lithium-Ion Batteries
KJ Griffith, Y Harada, S Egusa, RM Ribas, RS Monteiro, RB Von Dreele, AK Cheetham, RJ Cava, CP Grey, JB Goodenough
Chemistry of Materials
(2020)
33
Sample Dependence of Magnetism in the Next-Generation Cathode Material LiNi0.8Mn0.1Co0.1O2
P Mukherjee, JAM Paddison, C Xu, Z Ruff, AR Wildes, DA Keen, RI Smith, CP Grey, SE Dutton
Inorganic chemistry
(2020)
60
Prospects for lithium-ion batteries and beyond-a 2030 vision
CP Grey, DS Hall
Nat Commun
(2020)
11
Noninvasive In Situ NMR Study of "Dead Lithium" Formation and Lithium Corrosion in Full-Cell Lithium Metal Batteries.
AB Gunnarsdóttir, CV Amanchukwu, S Menkin, CP Grey
Journal of the American Chemical Society
(2020)
142

Research Group

Research Interest Groups

Email address