Keyword search (4,163 papers available)

"spine" Keyword-tagged Publications:

Title Authors PubMed ID
1 Manganese-Based Spinel Cathodes: A Promising Frontier for Solid-State Lithium-Ion Batteries Dou Y; Zhou S; Dawkins JIG; Zaghib K; Amine K; Xu GL; Deng S; 41137442
ENCS
2 Detrimental Effects of Space Flight on the Lumbar Spine May Be Correlated to Baseline Degeneration: Insights From an Advanced MR Imaging Study Bokhari R; Bisson DG; Fortin M; Vigouroux M; Cata JP; Hwang KP; Chen MM; Ceniza-Bordallo G; Ouellet JA; Ingelmo PM; 40124538
HKAP
3 PILLAR: ParaspInaL muscLe segmentAtion pRoject - a comprehensive online resource to guide manual segmentation of paraspinal muscles from magnetic resonance imaging Anstruther M; Rossini B; Zhang T; Liang T; Xiao Y; Fortin M; 37996857
SOH
4 Experimental study on pressure response to graded spinal canal compromise in an in vitro burst fracture mode. Bourget-Murray J, Bassi M, Frederick A, Hines J, Jarzem PF 28694593
CSBN
5 Are Magnetic Resonance Imaging Technologies Crucial to Our Understanding of Spinal Conditions? Crawford RJ, Fortin M, Weber KA, Smith A, Elliott JM 30913967
PERFORM

 

Title:Manganese-Based Spinel Cathodes: A Promising Frontier for Solid-State Lithium-Ion Batteries
Authors:Dou YZhou SDawkins JIGZaghib KAmine KXu GLDeng S
Link:https://pubmed.ncbi.nlm.nih.gov/41137442/
DOI:10.1002/adma.202514126
Publication:Advanced materials (Deerfield Beach, Fla.)
Keywords:characterizationmanganesesolid‐state batteriessolid‐state electrolytesspinel cathode
PMID:41137442 Category: Date Added:2025-10-25
Dept Affiliation: ENCS
1 Department of Chemical and Materials Engineering, Concordia University, Montreal, Quebec, H3G 1M8, Canada.
2 Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, 60439, USA.
3 Pritzker School of Molecular Engineering, The University of Chicago, 5801 South Ellis Ave, Chicago, Illinois, 60637, United States.

Description:

Recently, all-solid-state lithium-ion batteries (ASSLIBs), which exhibit improved safety and enhanced energy density compared to conventional commercialized lithium-ion batteries (LIBs), thereby have garnered extensive research interest. Among the promising cathode candidates, Mn-based spinel cathodes LiMn2O4 (LMO) and LiNi0.5Mn1.5O4 (LNMO), with the unique characteristics of low cost, structural stability, and 3D Li-ion diffusion channels, have demonstrated excellent performance in LIBs and presented great potential in ASSLIBs applications. However, several challenges, including structural degradations, poor interfacial contact, large interfacial resistance, and Mn-dissolution/diffusion during the electrochemical cycling, hinder their practical applications and commercialization in the ASSLIBs. Particularly, the high-voltage LNMO cathodes suffer from the challenge of electrochemical incompatibility with most of the solid-state electrolytes (SSEs). Herein, the spinel structure, the electrochemical behavior, and the structural degradation of the LMO/LNMO are explored. The characteristics and recent progress of the mitigating strategies to the challenges of various SSEs, including polymer-, oxide-, composite-, sulfide-, halide-, and LiPON-based SSEs, are introduced when paired with LMO/LNMO. Finally, the directions for future research to advance Mn-based spinel cathodes and fulfill the requirements of the next-generation ASSLIBs are also discussed.





BookR developed by Sriram Narayanan
for the Concordia University School of Health
Copyright © 2011-2026
Cookie settings
Concordia University