Fundamentals, status and challenges of direct recycling technologies for lithium ion batteries

H Ji, J Wang, J Ma, HM Cheng, G Zhou - Chemical Society Reviews, 2023 - pubs.rsc.org
Advancement in energy storage technologies is closely related to social development.
However, a significant conflict has arisen between the explosive growth in battery demand …

Nanoscale phenomena in lithium-ion batteries

SK Jung, I Hwang, D Chang, KY Park, SJ Kim… - Chemical …, 2019 - ACS Publications
The electrochemical properties and performances of lithium-ion batteries are primarily
governed by their constituent electrode materials, whose intrinsic thermodynamic and kinetic …

Insights into interfacial effect and local lithium-ion transport in polycrystalline cathodes of solid-state batteries

S Lou, Q Liu, F Zhang, Q Liu, Z Yu, T Mu, Y Zhao… - Nature …, 2020 - nature.com
Interfacial issues commonly exist in solid-state batteries, and the microstructural complexity
combines with the chemical heterogeneity to govern the local interfacial chemistry. The …

Upgrading traditional liquid electrolyte via in situ gelation for future lithium metal batteries

FQ Liu, WP Wang, YX Yin, SF Zhang, JL Shi… - Science …, 2018 - science.org
High-energy lithium metal batteries (LMBs) are expected to play important roles in the next-
generation energy storage systems. However, the uncontrolled Li dendrite growth in liquid …

[HTML][HTML] Stabilizing lattice oxygen in slightly Li-enriched nickel oxide cathodes toward high-energy batteries

T Zhou, H Wang, Y Wang, P Jiao, Z Hao, K Zhang, J Xu… - Chem, 2022 - cell.com
Lattice oxygen release (LOR), which promotes surface structural degradation and electrolyte
decomposition, is a major contributor to capacity fade and thermal runaway in layered oxide …

Lithium‐diffusion induced capacity losses in lithium‐based batteries

D Rehnlund, Z Wang, L Nyholm - Advanced Materials, 2022 - Wiley Online Library
Rechargeable lithium‐based batteries generally exhibit gradual capacity losses resulting in
decreasing energy and power densities. For negative electrode materials, the capacity …

Architecting “Li-rich Ni-rich” core-shell layered cathodes for high-energy Li-ion batteries

Z Jing, S Wang, Q Fu, V Baran, A Tayal… - Energy Storage …, 2023 - Elsevier
Li-rich or Ni-rich layered oxides are considered ideal cathode materials for high-energy Li-
ion batteries (LIBs) owing to their high capacity (> 200 mAh g–1) and low cost. However …

Inorganic-organic competitive coating strategy derived uniform hollow gradient-structured ferroferric oxide-carbon nanospheres for ultra-fast and long-term lithium-ion …

Y Xia, T Zhao, X Zhu, Y Zhao, H He, C Hung… - Nature …, 2021 - nature.com
The gradient-structure is ideal nanostructure for conversion-type anodes with drastic volume
change. Here, we demonstrate an inorganic-organic competitive coating strategy for …

[HTML][HTML] Mechanical methods for state determination of Lithium-Ion secondary batteries: A review

H Popp, M Koller, M Jahn, A Bergmann - Journal of Energy Storage, 2020 - Elsevier
Lithium-Ion batteries are the key technology to power mobile devices, all types of electric
vehicles, and for use in stationary energy storage. Much attention has been paid in research …

'Environment-friendly'polymer solid electrolyte membrane via a rapid surface-initiating polymeration strategy

H Yang, M Jing, H Li, W Yuan, B Deng, Q Liu… - Chemical Engineering …, 2021 - Elsevier
High ionic conductivity, strong stability to lithium metal, convenient preparation and good
adaptability to cathodes are the important prerequisites for the practical application of solid …