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: 3145
Function: getPubMedXML
File: /var/www/html/application/controllers/Detail.php
Line: 575
Function: pubMedSearch_Global
File: /var/www/html/application/controllers/Detail.php
Line: 489
Function: pubMedGetRelatedKeyword
File: /var/www/html/index.php
Line: 316
Function: require_once
The environmental fate of tungsten (W) has received particular attention due to its increasing utilization and potential health hazards. Adsorption on minerals is considered as a major factor in governing tungsten's mobility and bioavailability. Goethite, a highly stable iron oxide in soils and sediments, is pivotal in determining tungsten's environmental behavior. In this study, the sorption mechanisms of tungsten on the primary (110) surface of goethite were investigated by using systematic first-principles molecular dynamics (FPMD) simulations. First, we computed the bidentate corner-sharing complexation structures of tungsten in all protonation states (i.e., WO, HWO, and HWO) on the goethite surface. Tungsten exhibits a fivefold coordination in the WO and HWO systems, whereas it transforms into a sixfold coordination in the HWO system. By using the vertical energy gap method for p calculations, it is revealed that the adsorbed WO(HO) species is predominant at pH > 2.0, which is different from WO in aqueous solutions (pH > 4.9). The desorption free energy of WO(HO) species suggest that the bidentate corner-sharing form of WO(HO) is highly stable with a binding energy of 19.8 kcal/mol. This study fills a critical gap in the atomic-scale knowledge of tungsten behavior and stability in natural environments, providing a theoretical foundation for managing tungsten mobilization in both natural and industrial settings.
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Source |
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http://dx.doi.org/10.1021/acs.inorgchem.5c00757 | DOI Listing |
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