Theoretical calculation of size- dependent properties and the impact of carbon doping on lithium titanate oxide nanoparticles as anode material in Li-ion batteries

dc.contributor.authorMajid, Abdul
dc.contributor.authorShafique, Fiza
dc.contributor.authorTasawar, Sawaira
dc.contributor.authorAlkhedher, Mohammad
dc.contributor.authorETAL..
dc.date.accessioned2026-01-21T05:48:57Z
dc.date.available2026-01-21T05:48:57Z
dc.date.issued2025
dc.descriptionThe global energy sector is undergoing a major transformation via replacement of fossil fuels with renewable and sustainable energy sources to fulfil the worlds energy demands [1,2]. The energy demand is estimated to increase by 50 % by 2050 due to which the production of high performance energy storage systems has become inevitable [3]. In this regard, rechargeable batteries are proved viable solutions to power the electronic devices and electrical vehicles. The commercially available metal ion batteries include LIBs, magnesium ion batteries (MIBs) and aluminium ion batteries (AIBs). The current technology related to LIBs offers up to 95 % discharge permissible making them suitable for energy storage device [4,5].
dc.description.abstractThe technological improvement of lithium-ion battery (LIB) has been the center of research attention in the field of rechargeable batteries. This work reports investigation on prospects of lithium titanate oxide (LTO) nanoparticles as anode material in LIB via density functional theory and ab-initio molecular dynamics (AIMD) stimulations. The first study on effects of size variation and doping of carbon via AIMD simulations in LTO nanoparticles is studied here to explore the anodic properties of the material on the basis of structural properties, electronic characteristics, thermal stability, storage capacity, lithiation energy, and diffusion kinetics. The doping appeared to increase the storage capacity of LTO from 175 mAhg−1 to 1057 mAhg−1 which points to practicality of the material as anode in LIBs. The open circuit voltage is found as 3.08 V, 3.40 V, 2.70 V and 0.70 V for 1.2 nm, 1.5 nm, 3.4 nm and carbon doped nanoparticles respectively. Cl-NEB simulations are carried out to study the migration paths of Li and vacancy in the host structure indicated low energy barrier of 0.86 eV for 1.2 nm, 0.75 eV for 1.5 nm and 0.45 eV for the doped structure, respectively. Furthermore, the MD simulations indicate the diffusion coefficient as 4.3x10−12 m2/s, 5.0x10−12 m2/s, 0.83x10−12 m2/s and 1.72 x10−8 m2/s for 1.2 nm, 1.5 nm, 3.4 nm and doped 3.4 nm respectively. The calculated values of ionic conductivity of LIBs are 5.32 x 10−3 Sm−1, 0.19 x 10−2 Sm−1, 9.32 x 10−2 Sm−1 and 7.33 x 10−3 Sm−1 for 1.2 nm, 1.4 nm, 3.4 nm and doped 3.4 nm respectively. Keywords Lithium titanate oxide (LTO), Density functional theory (DFT), Lithium-ion batteries (LIBs), Ab-initio molecular dynamics (AIMD), Anode
dc.identifier.citationMajid, A., Shafique, F., Tasawar, S., Alkhedher, M., Khan, S. U. D., Alam, K., & Haider, S. (2025). Theoretical calculation of size-dependent properties and the impact of carbon doping on lithium titanate oxide nanoparticles as anode material in Li-ion batteries. Materials Science in Semiconductor Processing, 199, 109864.
dc.identifier.doihttps://doi.org/10.1016/j.mssp.2025.109864
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/8032
dc.language.isoen
dc.publisherElesvier
dc.titleTheoretical calculation of size- dependent properties and the impact of carbon doping on lithium titanate oxide nanoparticles as anode material in Li-ion batteries
dc.typeArticle

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