Restraining the escape of lattice oxygen enables superior cyclic performance towards high-voltage Ni-rich cathodes. [PDF]
Yu H +6 more
europepmc +1 more source
Closed‐Loop Solid‐State Synthesis Planning for Materials Discovery With Large Language Models
Leveraging literature data, we build a large‐language‐model‐driven workflow that extracts synthesis steps from 4407 papers, retrieves similar precedents, and generates candidate solid‐state synthesis recipes. The system benchmarks against ground‐truth and then operates in a closed loop with experiments to synthesize oxy‐selenide electrolyte materials ...
Dong Won Jeon +9 more
wiley +1 more source
Stability and Redox Mechanisms of Ni-Rich NMC Cathodes: Insights from First-Principles Many-Body Calculations [PDF]
Ni-rich LiNi a Mn b Co c O2 (NMC) cathodes undergo a series of degradation reactions, a prominent one being oxygen loss from the surface of the NMC particles; this process is more pronounced as Ni content is increased and at high voltages.
core +4 more sources
The fast advancement of high-energy lithium-ion batteries demands a thorough and reliable method for choosing cathode materials that meet performance, safety, cost, and sustainability needs all at once.
Solmaz Abbasi
doaj +1 more source
Sustainable and Multifunctional Natural Macromolecular Polymers for Aqueous Zn Metal Batteries
We comprehensively review the structure‐function relationships and regulatory mechanism of natural macromolecular polymers in stabilizing zinc anodes at the microscopic and mesoscopic scales. The interactions among polymer structures, optimization strategies, and regulatory mechanisms are discussed systematically summarizing recent related research ...
Yunuo Shi +13 more
wiley +1 more source
Regulation of Cathode-Electrolyte Interface through Electrolyte Additive for Ni-Rich Cathodes
The cathode–electrolyte interface (CEI) plays a critical role in the cycling stability of lithium-ion batteries, especially for Ni-rich NMC cathodes. Layered Ni-rich NMC materials are promising cathodes for high energy density batteries due to their high
Yujing Bi +4 more
core +1 more source
A Ni/Mn-graded surface is proposed to suppress the unwanted phase transformations and side-reactions of high-energy lithium-rich layered oxide cathodes, and thus to mitigate their capacity and voltage decay.
Yangyang Wang +4 more
core +1 more source
Recent progress and perspective on lithium metal battery with nickel-rich layered oxide cathode
The pairing of lithium metal anode (LMA) with Ni-rich layered oxide cathodes for constructing lithium metal batteries (LMBs) to achieve energy density over 500 Wh kg−1 receives significant attention from both industry and the scientific community ...
Han Zhang +3 more
doaj +1 more source
Atomic Layer Deposition Derived Zirconia Coatings on Ni-Rich Cathodes in Solid-State Batteries: Correlation Between Surface Constitution and Cycling Performance. [PDF]
Kitsche D +7 more
europepmc +1 more source
Electrolyte Design for Fast‐Charging Lithium‐Based Batteries
A decade of progress in fast‐charging electrolytes for lithium batteries is reviewed. Electrolyte design strategies spanning solvents, salts, additives, and advanced systems, such as localized high‐concentration electrolytes (LHCEs), are summarized. Advanced diagnostic tools for lithium plating and interphase chemistry are discussed, with perspectives ...
Chen Liu, Zehao Cui, Arumugam Manthiram
wiley +1 more source

