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S Araújo W, Caldeira Rêgo CR, Guedes-Sobrinho D, Cavalheiro Dias A, Rodrigues do Couto I, Bordin JR, Ferreira de Matos C, Piotrowski MJ. Quantum Simulations and Experimental Insights into Glyphosate Adsorption Using Graphene-Based Nanomaterials. ACS APPLIED MATERIALS & INTERFACES 2024; 16:31500-31512. [PMID: 38842224 DOI: 10.1021/acsami.4c05733] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/07/2024]
Abstract
The increasing global demand for food and agrarian development brings to light a dual issue concerning the use of substances that are crucial for increasing productivity yet can be harmful to human health and the environment when misused. Herein, we combine insights from high-level quantum simulations and experimental findings to elucidate the fundamental physicochemical mechanisms behind developing graphene-based nanomaterials for the adsorption of emerging contaminants, with a specific focus on pesticide glyphosate (GLY). We conducted a comprehensive theoretical and experimental investigation of graphene-based supports as promising candidates for detecting, sensing, capturing, and removing GLY applications. By combining ab initio molecular dynamics and density functional theory calculations, we explored several chemical environments encountered by GLY during its interaction with graphene-based substrates, including pristine and punctual defect regions. Our results unveiled distinct interaction behaviors: physisorption in pristine and doped graphene regions, chemisorption leading to molecular dissociation in vacancy-type defect regions, and complex transformations involving the capture of N and O atoms from impurity-adsorbed graphene, resulting in the formation of new GLY-derived compounds. The theoretical findings were substantiated by FTIR and Raman spectroscopy, which proposed a mechanism explaining GLY adsorption in graphene-based nanomaterials. The comprehensive evaluation of adsorption energies and associated properties provides valuable insights into the intricate nature of these interactions, shedding light on potential applications and guiding future experimental investigations of graphene-based nanofilters for water decontamination.
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Affiliation(s)
- Wanderson S Araújo
- Department of Physics, Federal University of Pelotas, PO Box 354, Pelotas, Rio Grande do Sul 96010-900, Brazil
| | - Celso Ricardo Caldeira Rêgo
- Institute of Nanotechnology Hermann-von-Helmholtz-Platz, Karlsruhe Institute of Technology, 76021 Karlsruhe, Germany
| | - Diego Guedes-Sobrinho
- Chemistry Department, Federal University of Paraná, Curitiba, Paraná 81531-980, Brazil
| | - Alexandre Cavalheiro Dias
- Institute of Physics and International Center of Physics, University of Brasília, Brasília, Federal District 70919-970, Brazil
| | - Isadora Rodrigues do Couto
- Department of Chemistry, Federal University of Santa Maria, Santa Maria, Rio Grande do Sul 97105-900, Brazil
| | - José Rafael Bordin
- Department of Physics, Federal University of Pelotas, PO Box 354, Pelotas, Rio Grande do Sul 96010-900, Brazil
| | - Carolina Ferreira de Matos
- Department of Chemistry, Federal University of Santa Maria, Santa Maria, Rio Grande do Sul 97105-900, Brazil
| | - Maurício Jeomar Piotrowski
- Department of Physics, Federal University of Pelotas, PO Box 354, Pelotas, Rio Grande do Sul 96010-900, Brazil
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Sousa KAP, Morawski FDM, de Campos CEM, Parreira RLT, Piotrowski MJ, Nagurniak GR, Jost CL. Electrochemical, theoretical, and analytical investigation of the phenylurea herbicide fluometuron at a glassy carbon electrode. Electrochim Acta 2022. [DOI: 10.1016/j.electacta.2022.139945] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/03/2022]
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Astudillo‐Sánchez PD, Enrique J. Soriano‐Castillo MS, Manzanilla B, Rocha‐Ortiz G, Trujano‐Ortiz LG, Matus MH, Domínguez Z, Salas‐Reyes M. Electrochemical Oxidation of Symmetrical Antioxidant Chicoric Acid in DMSO: Is this a Sequential or a Simultaneous 2ECE Mechanism? ChemistrySelect 2021. [DOI: 10.1002/slct.202101952] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/08/2022]
Affiliation(s)
- Pablo D. Astudillo‐Sánchez
- Departamento de Ciencias Básicas y Aplicadas del Centro Universitario de Tonalá Universidad de Guadalajara Av. Nuevo Periférico 555, Ejido San José Tatepozco C.P. 45425 Tonalá, Jalisco México
| | - M. S. Enrique J. Soriano‐Castillo
- Instituto de Química Aplicada Universidad Veracruzana Dr. Luis Castelazo Ayala S/N, Col. Industrial Ánimas, A.P. 575 Xalapa, Ver. 91190 México
| | - Brenda Manzanilla
- Instituto de Química Aplicada Universidad Veracruzana Dr. Luis Castelazo Ayala S/N, Col. Industrial Ánimas, A.P. 575 Xalapa, Ver. 91190 México
| | - Gilberto Rocha‐Ortiz
- Departamento de Ciencias Básicas y Aplicadas del Centro Universitario de Tonalá Universidad de Guadalajara Av. Nuevo Periférico 555, Ejido San José Tatepozco C.P. 45425 Tonalá, Jalisco México
| | - Lidia G. Trujano‐Ortiz
- Departamento de Ciencias Básicas y Aplicadas del Centro Universitario de Tonalá Universidad de Guadalajara Av. Nuevo Periférico 555, Ejido San José Tatepozco C.P. 45425 Tonalá, Jalisco México
| | - Myrna H. Matus
- Instituto de Química Aplicada Universidad Veracruzana Dr. Luis Castelazo Ayala S/N, Col. Industrial Ánimas, A.P. 575 Xalapa, Ver. 91190 México
| | - Zaira Domínguez
- Instituto de Química Aplicada Universidad Veracruzana Dr. Luis Castelazo Ayala S/N, Col. Industrial Ánimas, A.P. 575 Xalapa, Ver. 91190 México
| | - Magali Salas‐Reyes
- Instituto de Química Aplicada Universidad Veracruzana Dr. Luis Castelazo Ayala S/N, Col. Industrial Ánimas, A.P. 575 Xalapa, Ver. 91190 México
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Abstract
Gold is mainly present in the form of [Au(CN)2]− during the cyanide leaching process, and this [Au(CN)2]− can be adsorbed by graphite in carbonaceous gold ore resulting in preg-robbing gold. In order to clarify the adsorption mechanism between the [Au(CN)2]− and graphite, the interaction between the [Au(CN)2]− and graphite (0001) surface was studied using density functional theory (DFT). The distance between [Au(CN)2]− and graphite (0001) decreased from (4.298–4.440 Å) to (3.123–3.343 Å) after optimization, and the shape of [Au(CN)2]− and graphite (0001) obviously changed from straight to curved, which indicated that the [Au(CN)2]− had been adsorbed on the graphite (0001) surface. A partial densities of state (PDOS) analysis revealed that there was little change in the delocalization and locality of the PDOS on the graphite (0001) surface after adsorption. However, the valence bands of the Au 5d orbital, C 2p orbital, and N 2p orbital near the Fermi level moved slightly towards lower energy levels; therefore, the adsorption configuration was stable. An analysis of the Mulliken charge population indicated that the Au, N, and C in [Au(CN)2]− obtained 0.26, 0.18, 0.04 electrons after adsorption, respectively, while C(surf) lost 0.03 electrons. [Au(CN)2]− changed to a conductor from an insulator after adsorption. Taking into account the surface electrical properties of [Au(CN)2]− and graphite (0001), there was still a slight electrostatic adsorption between them. The analysis of adsorption energy, electronic structure, PDOS, electron density, Mulliken charge population, and Mulliken bond population revealed that [Au(CN)2]− could be adsorbed to the graphite (0001) surface; the adsorption was a type of physical adsorption (including electrostatic adsorption) and mainly occurred on the two C≡N. These results contributed to the understanding of the mechanisms involved in preg-robbing gold formation by graphite and the optimization of this process during cyanide leaching.
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Jaimes R, Cervantes-Alcalá R, García-García W, Miranda-Hernández M. Ab initio computational modeling of the electrochemical reactivity of quinones on gold and glassy carbon electrodes. Electrochim Acta 2018. [DOI: 10.1016/j.electacta.2018.07.110] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/15/2022]
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