Project overview
Cheap, safe and high-energy batteries are required for applications such as the electrification of transport, the large-scale storage of energy from renewable resources and consumer portable devices. Lithium-oxygen and lithium-sulphur batteries are very promising candidates because they have the potential to store more than 5 times higher energy than today's lithium-ion batteries of the same weight and volume. Currently, the performance of lithium-oxygen and lithium-sulphur batteries is limited by several fundamental challenges. This project will develop an experimental-based physical-chemical understanding of the underlying processes and will develop tailored solutions to overcome these problems. Our approach will be to fundamentally change the reaction mechanism in order to boost battery performance. Homogeneous catalysts capable of transferring several electrons will be explored with the aim of eliminating problematic reaction intermediates. This is expected to not only enhance reaction kinetics but also to suppress degradation reactions. Novel electrolytes will be developed which are designed to provide ultrafast charge transport of the homogeneous catalysts. Novel lithium protection approaches will also be explored, which are designed to suppress unwanted reactions on the lithium electrode as well as enhancing the safety of these batteries. In conclusion, this project aims to achieve a step change in rechargeable lithium batteries based on a full mechanistic understanding and tailored innovative approaches.
Staff
Lead researchers
Collaborating research institutes, centres and groups
Research outputs
He Li, John Lampkin, Yu-Chuan Chien, Liam Furness, Daniel Brandell, Matthew Lacey & Nuria Garcia-Araez,
2022, Electrochimica Acta, 403
Type: article
Arghya Bhowmik, David Carrasco-Busturia, Piotr Jankowski, Rinaldo Raccichini, Nuria Garcia-Araez & Juan María García-Lastra,
2022, The Journal of Physical Chemistry C, 126(1), 40-47
Type: article
Sara Perez rodriguez, Samuel Fitch, Philip N. Bartlett & Nuria Garcia-Araez,
2022, ChemSusChem, 15(1)
Type: article
Nuria Garcia-Araez, Vivek Padmanabhan & Nina Meddings,
2021, ACS Applied Materials and Interfaces
Type: article
Hang Cheng, Nuria Garcia-Araez & Andrew L. Hector,
2021, Materials Advances, 2(24), 7956-7966
DOI: 10.1039/D1MA00613D
Type: article
He Li, John Lampkin & Nuria Garcia-Araez,
2021, ChemSusChem, 14(15), 3139-3146
Type: article
James Robinson, Kai Xi, Andrea C. Ferrari Ferrari, Heather Au, Maria-Magdalena Titirici, Andres Parra-Puerto, Anthony R. Kucernak, Samuel Fitch, Nuria Garcia-Araez, Zachary L. Brown, Mauro Pasta, Liam Furness, Alexander J. Kibler, Darren A. Walsh, Lee R. Johnson, Conrad Holc, Graham N. Newton, Neil R. Champness, Foivos Markoulidis, Carol Crean, Robert C.T. Slade, Eleftherios I. Andritsos, Qiong Cai, Shumaila Babar, Teng Zhang, Constantina Lekakou, Nivedita Kulkarni, Alexander J.E. Rettie, Rhodri Jervis, Michael Cornish, Monica Marinescu, Gregory Offer, Zhuangnan Li, Liam Bird, Clare P. Grey, Manish Chhowalla, Daniele Di Lecce, Rhodri E. Owen, Thomas S Miller, Daniel J.L. Brett, Sebastien Liatard, David Ainsworth & Paul R. Shearing,
2021, Journal of Physics: Energy, 3(3)
Type: article