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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Quantifying surface-specific kinetics of organic oxidation in heterogeneous catalytic systems remains a critical challenge due to the interplay of adsorption and complex reaction mechanisms. In this study, we introduce a novel kinetic framework that distinguishes surface reaction kinetics () from conventional solution-phase kinetics (), using nitrogen-doped porous carbon (NPC) as a model catalyst with high adsorption capacity and exceptional efficacy in peroxymonosulfate (PMS) activation. By directly analyzing the selective oxidation of fully adsorbed -substituted phenolic compounds (-PCs), we precisely quantified and established robust QSAR models with remarkable linear correlations ( = 0.862-0.912) to molecular descriptors such as Hammett constant (σ), highest occupied molecular orbital energy (), and ionization potential (IP). In contrast, -based models showed weaker correlations ( = 0.363-0.551), reflecting interference from adsorption-desorption dynamics. This distinction underscores the limitations of solution-phase kinetics in systems with strong adsorption properties and highlights the enhanced mechanistic understanding and predictive power of surface-specific models. Further analysis revealed surface-selective oxidation via an electron transfer pathway, predominantly governed by the electronic properties of -PCs rather than their adsorption affinity. These findings provide a valuable approach to accurately capture surface reactivity and predicting pollutant behavior in heterogeneous sorption-oxidation systems.
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http://dx.doi.org/10.1021/acs.est.5c01560 | DOI Listing |