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: 3165
Function: getPubMedXML
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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As a unique class of framework electronic materials, 2D conjugated metal-organic frameworks (2D c-MOFs) exhibit intrinsic porosity, superior electrical conductivity, and abundant active sites. These properties endow them with great potential in electrochemical lithium-ion storage. However, the development of 2D c-MOF-based capacitors has encountered a bottleneck in enhancing Li-ion storage capacitance, and the design of high-capacitance MOF electrode materials has remained a challenge. Herein, we synthesize a Cu-OHDDQP (octahydroxy-dibenzo[a,c]dibenzo[5,6:7,8]quinoxalino[2,3-i]phenazine) 2D c-MOF with a quasi-honeycomb lattice by employing a nonplanar D-symmetric conjugated ligand embedding redox-active pyrazine moieties. The quasi-honeycomb lattice features a dual-porous tessellation of C-symmetric and C-symmetric pores. Notably, when utilized as active material for electrochemical lithium storage, Cu-OHDDQP achieves a record-high gravimetric specific capacitance among reported 2D c-MOFs of 452 F g in aqueous lithium electrolyte, along with a decent cycling stability of 90% after 1000 cycles. Such high capacitance is attributed to both the quasi-honeycomb lattice leading to higher surface area and the redox-active pyrazine moieties offering extra lithium-adsorption sites and associated pseudocapacitance. This work demonstrates that rational ligand design enables high-capacitance MOF electrodes materials, highlighting the potential of conductive MOFs for electrochemical energy technologies.
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Source |
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12207367 | PMC |
http://dx.doi.org/10.1002/anie.202502988 | DOI Listing |