Abstract
The low theoretical specific capacity and rapid capacity degradation, especially during long cycling, have been the key challenges to the practical application of lithium titanate (Li4Ti5O12) as an anode material for stable, high-energy and high-power density lithium-ion batteries (LIBs). This study reports a novel strategy of the synergy of surface lattice plane engineering by microwave irradiation and CeF3 surface coating to synthesize a high-specific-capacity, high-rate and durable LTO–CeF3–mw anode material for LIBs. The innovative anode material shows outstanding specific capacity, rate capability and long-term cycle stability. It is of interest to note that the LTO–CeF3–mw anode material has a specific capacity of 191.1 mAh g−1 at 175 mA g−1 (1C), which is greater than the theoretical specific capacity of LTO (175 mAh g−1). Furthermore, LTO–CeF3–mw has specific capacities of 168.3 and 119.9 mAh g−1 at 875 mA g−1 (5C) and 1750 mA g−1 (10C), respectively. Remarkably, it shows a specific capacity of 166.5 mAh g−1 after 1000 cycles at 5C and a capacity retention of 98.9%. This notable electrochemical performance of LTO–CeF3–mw is attributed to the synergy of surface lattice plane engineering by microwave irradiation and CeF3 surface coating that transformed the surface lattice plane (111) of LTO to (220) and (310) in LTO–CeF3–mw, resulting in high surface area which significantly improved mass transport. Therefore, the unique structure of the LTO–CeF3–mw anode material is a key development for achieving safe, durable, high-energy and high-power lithium-ion batteries, with potential applications in large-scale energy storage.
| Original language | English |
|---|---|
| Pages (from-to) | 379-393 |
| Number of pages | 15 |
| Journal | Energy Advances |
| Volume | 5 |
| Issue number | 4 |
| Early online date | 29 Dec 2025 |
| DOIs | |
| Publication status | Published - 1 Apr 2026 |
Bibliographical note
© 2026 The Author(s). Published by the Royal Society of ChemistryThis is an Open Access article distributed under the terms of the Creative
Commons Attribution License (http://creativecommons.org/licenses/by/4.0/)
Under this licence, users are permitted to share, download, copy, and redistribute the material in any medium or format, and—where applicable—adapt or build upon the work, provided they comply with the conditions of the stated licence
Funding
The authors are grateful for the financial support from the following: (i) UCL-Wits collaboration Seed Fund, (ii) Fellowship of the Association of the Commonwealth Universities (ACU) for partnership with the Coventry University (UK), and (iii) the DSI-NRF-Wits SARChI Chair in Materials Electrochemistry and Energy Technologies (MEET) (UID No.: 132739). JJH acknowledges funding from EPSRC (EP/T517793/1).
| Funders | Funder number |
|---|---|
| The Association of Commonwealth Universities | |
| Coventry University | 132739 |
| Engineering and Physical Sciences Research Council | EP/T517793/1 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
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