2020824 · Ni-rich layered cathode materials are promising for high-energy-density Li-ion batteries, but their degradation mechanisms are
2019318 · All-solid-state Li-ion batteries (ASSLiB) have been considered to be the next generation energy storage devices that can overcome safety issues and increase
20211015 · Xiao, L. et al. Stable Li metal anode with "ion–solvent-coordinated" nonflammable electrolyte for safe Li metal batteries. ACS Energy Lett. 4, 483–488 (2019). Article ADS CAS Google Scholar
Abstract: To address the capacity degradation, voltage fading, structural instability and adverse interface reactions in cathode materials of lithium-ion batteries (LIBs), numerous modification strategies have been developed, mainly including coating and doping. In particular, the important strategy of doping (surface doping and bulk doping) has been
2017228 · All-solid-state bulk-type lithium ion batteries (LIBs) are considered ultimate solutions to the safety issues associated with conventional LIBs using flammable liquid electrolyte. The development of bulk-type all-solid-state LIBs has been hindered by the low loading of active cathode materials, hence low specific surface capacity, and by the high
20221229 · Layered Co-free Ni-rich cathodes are the most cost-effective for high-energy-density Li-ion batteries (LIBs), yet the structural instability and interfacial side
20171219 · Conspectus. Layered lithium transition metal oxides, in particular, NMCs (LiNi x Co y Mn z O 2) represent a family of prominent lithium ion battery cathode materials with the potential to increase energy densities and lifetime, reduce costs, and improve safety for electric vehicles and grid storage.Our work has focused on various strategies to
Delivery of a high operating voltage with stable cycling behavior is a challenge in developing cathodes for high-energy Li-ion batteries (LIBs). The representative spinel LiNi 0.5 Mn
202181 · 1. Introduction. Lithium-ion batteries have enabled a societal revolution since their entry to market in 1991 [1].Since then, incremental advances in capacity retention, power delivery capabilities and competitive pricing have permitted their implementation in consumer electronics, vehicles and intermittent grid storage [2] 2018
201442 · Nanomaterials as anode for lithium-ion batteries (LIB) have gained widespread interest in the research community. However, scaling up and processibility are bottlenecks to further
2021614 · 6 Altmetric. Metrics. Oxygen loss is an elusive phenomenon that accompanies oxygen redox in lithium-rich layered oxides in batteries. Now, multi-length
2019318 · All-solid-state Li-ion batteries (ASSLiB) have been considered to be the next generation energy storage devices that can overcome safety issues and increase the energy density by replacing the organic electrolyte with inflammable solid electrolyte. However, the synthesis of high ionic conductivity electrolyt
2013107 · Hybrid bulk electrodes with 3D nanoporosity for Li-ion batteries. Scheme showing the fabrication of seamlessly integrated S/NP Cu/MnO 2 bulk electrode: (a), Cleaned copper foil substrate; (b), Cu
20221110 · In this review, recent significant progress in surface doping and bulk doping strategies is demonstrated in detail by focusing on their inherent differences as
201442 · Nanomaterials as anode for lithium-ion batteries (LIB) have gained widespread interest in the research community. Here, we report that bulk antimony sulfide with a size of 10–20 μm exhibits
202455 · Nickel-rich cathode materials have gained popularity in the development of lithium-ion batteries (LIBs) due to their high energy density, which exceeds 250 Wh kg
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20211116 · On the route towards low-cost and more sustainable cathode materials with increasing Ni contents >80 % for high-energy lithium-ion battery cells, however, combining both approaches can be of utmost
2017228 · All-solid-state bulk-type lithium ion batteries (LIBs) are considered ultimate solutions to the safety issues associated with conventional LIBs using flammable liquid
20181115 · The bulk of Li 1.2 Ni 0.13 Co 0.13 Mn 0.54 O 2 is reconstructed by an embedded spinel phase. They have been evaluated as a promising substituted cathode for high-energy Li-ion batteries [16, 17] due to its high theoretical specific capacities over 250 mAh g −1 [18, 19]. However, Li-rich Mn-based materials suffer from high initial