Results 11 to 20 of about 2,373,789 (295)
Degradation and Aging Routes of Ni-rich Cathode Based Li-Ion Batteries
Driven by the increasing plea for greener transportation and efficient integration of renewable energy sources, Ni-rich metal layered oxides, namely NMC, Li [Ni1−x−yCoyMnz] O2 (x + y ≤ 0.4), and NCA, Li [Ni1−x−yCoxAly] O2 ...
Philipp Teichert +3 more
doaj +2 more sources
Onset Potential for Electrolyte Oxidation and Ni-Rich Cathode Degradation in Lithium-Ion Batteries. [PDF]
High-capacity Ni-rich layered metal oxide cathodes are highly desirable to increase the energy density of lithium-ion batteries. However, these materials suffer from poor cycling performance, which is exacerbated by increased cell voltage. We demonstrate
Dose WM +6 more
europepmc +4 more sources
One-Step Solid-State Synthesis of Ni-Rich Cathode Materials for Lithium-Ion Batteries. [PDF]
Ni-rich cathodes are expected to serve as critical materials for high-energy lithium-ion batteries. Increasing the Ni content can effectively improve the energy density but usually leads to more complex synthesis conditions, thus limiting its development.
Wang L, Shi Q, Zhan C, Liu G.
europepmc +2 more sources
A Review of Degradation Mechanisms and Recent Achievements for Ni-Rich Cathode-Based Li-Ion Batteries [PDF]
The growing demand for sustainable energy storage devices requires rechargeable lithium-ion batteries (LIBs) with higher specific capacity and stricter safety standards.
Notten, PHL +3 more
core +4 more sources
Electrolyte reactivity at the charged Ni-rich cathode interface and degradation in Li-ion batteries [PDF]
The chemical and electrochemical reactions at the positive electrode-electrolyte interface in Li-ion batteries are hugely influential on cycle life and safety. Ni-rich layered transition metal oxides exhibit higher interfacial reactivity than their lower
Robert S., Weatherup +9 more
core +2 more sources
The properties exhibited by Ni-rich cathode materials were enhanced through the mixed coating layers of Li3PO4 and boric acid. The scanning electron microscopy (SEM), the transmission electron microscope (TEM), the differential scanning calorimetry (DSC),
Zunzhi WANG +7 more
doaj +1 more source
Resolving high potential structural deterioration in Ni-rich layered cathode materials for lithium-ion batteries operando [PDF]
LixNi0.90Co0.05Al0.05O2 (NCA) extracted from an automotive battery cell is studied using a combination of in-house operando techniques to understand the correlation between gas evolution and structural collapse when NCA is cycled to high potentials in a ...
Casimir, Misiewicz +5 more
core +2 more sources
Nickel (Ni)-rich cathode materials have become promising candidates for the next-generation electrical vehicles due to their high specific capacity. However, the poor thermodynamic stability (including cyclic performance and safety performance or thermal
Jixue Shen +17 more
core +1 more source
Crack-free single-crystalline Co-free Ni-rich LiNi0.95Mn0.05O2 layered cathode
The rapid growth in global electric vehicles (EVs) sales has promoted the development of Co-free, Ni-rich layered cathodes for state-of-the-art high energy-density, inexpensive lithium-ion batteries (LIBs).
Lianshan Ni +10 more
doaj +1 more source
Current commercial nickel (Ni)-rich Mn, Co, and Al-containing cathodes are employed in high-energy-density lithium (Li) batteries all around the globe.
Adil Saleem (13822021) +23 more
core +1 more source

