Severity: Warning
Message: file_get_contents(https://...@gmail.com&api_key=61f08fa0b96a73de8c900d749fcb997acc09&a=1): Failed to open stream: HTTP request failed! HTTP/1.1 429 Too Many Requests
Filename: helpers/my_audit_helper.php
Line Number: 197
Backtrace:
File: /var/www/html/application/helpers/my_audit_helper.php
Line: 197
Function: file_get_contents
File: /var/www/html/application/helpers/my_audit_helper.php
Line: 271
Function: simplexml_load_file_from_url
File: /var/www/html/application/helpers/my_audit_helper.php
Line: 1075
Function: getPubMedXML
File: /var/www/html/application/helpers/my_audit_helper.php
Line: 3195
Function: GetPubMedArticleOutput_2016
File: /var/www/html/application/controllers/Detail.php
Line: 597
Function: pubMedSearch_Global
File: /var/www/html/application/controllers/Detail.php
Line: 511
Function: pubMedGetRelatedKeyword
File: /var/www/html/index.php
Line: 317
Function: require_once
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Ni-rich layered oxides (Li[NiCoMn ]O (NCM, x≥0.8)) are promising cathodes for high-energy lithium-ion batteries but suffer from the inherent chemomechanical, structural, and interfacial instability, leading to severe dynamic structural degradation, especially under high-voltage operation. Herein, a self-engineered lattice modification has been developed for a single-crystal Ni-rich cathode by simultaneously incorporating Zr and Al via a facile thermal treatment. The mechanism of high-voltage stable performance and the optimized multilevel dynamic structure evolution in cation diffusion, microstructure, and interfaces are systematically unraveled by in situ measurement and theory calculation/simulation. The Al/Zr co-doping effectively suppresses the harmful phase transition and mitigates anisotropic lattice distortions, thus alleviating the formation of intragranular cracking and particle gliding. Moreover, it also reduces the Li/Ni cation mixing, facilitates stable Li-diffusion, and prevents inhomogeneous Li-distribution, effectively suppressing internal stress. Additionally, the irreversible bulk lattice rearrangement and interfacial parasitic reaction are efficiently mitigated, facilitating the stable interface. As anticipated, it demonstrates a notably improved capacity retention rate of 96.8% after 100 cycles at 1C at 3.0-4.5 V, significantly surpassing the pristine cathode (76.0%). Even at a high cutoff voltage of 4.6 V, it retains 87.8% capacity, realizing a high energy density of 774.1 Wh kg cathode. This research offers valuable insights into stabilizing the bulk lattice and surface chemistry of single-crystal Ni-rich cathodes, paving the way for the large-scale development of advanced durable LIBs.
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http://dx.doi.org/10.1002/smll.202505331 | DOI Listing |