Michael Jonathan Lain
University of Warwick
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Publication
Featured researches published by Michael Jonathan Lain.
Scientific Reports | 2016
Melanie Loveridge; Michael Jonathan Lain; Ian Johnson; Alexander J. Roberts; Shane D Beattie; R. J. Dashwood; Jawwad A. Darr; Rohit Bhagat
Lithium iron phosphate, LiFePO4 (LFP) has demonstrated promising performance as a cathode material in lithium ion batteries (LIBs), by overcoming the rate performance issues from limited electronic conductivity. Nano-sized vanadium-doped LFP (V-LFP) was synthesized using a continuous hydrothermal process using supercritical water as a reagent. The atomic % of dopant determined the particle shape. 5 at. % gave mixed plate and rod-like morphology, showing optimal electrochemical performance and good rate properties vs. Li. Specific capacities of >160 mAh g−1 were achieved. In order to increase the capacity of a full cell, V-LFP was cycled against an inexpensive micron-sized metallurgical grade Si-containing anode. This electrode was capable of reversible capacities of approximately 2000 mAh g−1 for over 150 cycles vs. Li, with improved performance resulting from the incorporation of few layer graphene (FLG) to enhance conductivity, tensile behaviour and thus, the composite stability. The cathode material synthesis and electrode formulation are scalable, inexpensive and are suitable for the fabrication of larger format cells suited to grid and transport applications.
Physical Chemistry Chemical Physics | 2016
Melanie Loveridge; Michael Jonathan Lain; Qianye Huang; Chaoying Wan; Alexander J. Roberts; George S. Pappas; Rohit Bhagat
Hybrid anode materials consisting of micro-sized silicon (Si) particles interconnected with few-layer graphene (FLG) nanoplatelets and sodium-neutralized poly(acrylic acid) as a binder were evaluated for Li-ion batteries. The hybrid film has demonstrated a reversible discharge capacity of ∼1800 mA h g-1 with a capacity retention of 97% after 200 cycles. The superior electrochemical properties of the hybrid anodes are attributed to a durable, hierarchical conductive network formed between Si particles and the multi-scale carbon additives, with enhanced cohesion by the functional polymer binder. Furthermore, improved solid electrolyte interphase (SEI) stability is achieved from the electrolyte additives, due to the formation of a kinetically stable film on the surface of the Si.
Scientific Reports | 2018
Qianye Huang; Melanie Loveridge; Ronny Genieser; Michael Jonathan Lain; Rohit Bhagat
Silicon-Few Layer Graphene (Si-FLG) composite electrodes are investigated using a scalable electrode manufacturing method. A comprehensive study on the electrochemical performance and the impedance response is measured using electrochemical impedance spectroscopy. The study demonstrates that the incorporation of few-layer graphene (FLG) results in significant improvement in terms of cyclability, electrode resistance and diffusion properties. Additionally, the diffusion impedance responses that occur during the phase changes in silicon is elucidated through Staircase Potentio Electrochemical Impedance Spectroscopy (SPEIS): a more comprehensive and straightforward approach than previous state-of-charge based diffusion studies.
Journal of Power Sources | 2016
Shane D Beattie; Melanie Loveridge; Michael Jonathan Lain; Stefania Ferrari; Bryant J. Polzin; Rohit Bhagat; R. J. Dashwood
Archive | 2010
Melanie Loveridge; Michael Jonathan Lain; Esam Kronfli
Archive | 2011
Melanie Loveridge; Michael Jonathan Lain; Fazlil Coowar; Mamdouh Elsayed Abdelsalam
Archive | 2012
Melanie Loveridge; Michael Jonathan Lain; Fazil Coowar; Mamdouh Elsayad Abdelsalam
Electrochimica Acta | 2017
Kotub Uddin; Limhi Somerville; Anup Barai; Michael Jonathan Lain; T.R. Ashwin; P. A. Jennings; James Marco
Archive | 2011
Fazlil Coowar; Mamdouh Elsayed Abdelsalam; Michael Jonathan Lain
Archive | 2012
Melanie Loveridge; Michael Jonathan Lain; Fazlil Coowar; Mamdouh Elsayed Abdelsalam