Exploring the CO2 photocatalytic evolution onto the CuO (110) surface: A combined theoretical and experimental study

被引:0
作者
Castro-Ocampo, O. [1 ]
Ochoa-Jaimes, J. C. [1 ]
Celaya, Christian A. [2 ]
Gonzalez-Torres, J.
Gonzalez-Reyes, L.
Hernandez-Perez, I. [3 ]
Garibay-Febles, V. [4 ]
Quintero, Oscar A. Jaramillo [1 ]
Muniz, Jesus [1 ]
Suarez-Parra, R. [1 ]
机构
[1] Univ Nacl Autonoma Mexico, Inst Energias Renovables, Priv Xochicalco S-N,Col Ctr, Temixco 62580, Morelos, Mexico
[2] Univ Nacl Autonoma Mexico, Ctr Nanociencias & Nanotecnol, Km 107 Carretera Tijuana Ensenada, Ensenada 22800, BC, Mexico
[3] Univ Autonoma Metropolitana A, Dept Ciencias Bas, Ave Sn Pablo Xalpa 180,02128, Azcapotzalco 02200, Mexico
[4] Inst Mexicano Petr, Eje Cent Lazaro Cardenas Norte 152 Col,San Bartolo, Mexico City 07730, Mexico
关键词
Photocatalysis; Solar fuels; Density functional theory; CO2; transformation; HYDROCARBON FUELS; CONVERSION; APPROXIMATION; CHALLENGES; CATALYST; POINTS; DFT;
D O I
10.1016/j.heliyon.2023.e20134
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A combined theoretical and experimental study was performed to elucidate the photocatalytic potential of tenorite, CuO (1 1 0) and to assess the evolution pathway of carbon dioxide (CO2) evolution pathway. The calculations were performed with density functional theory (DFT) at a DFT + U + J0 and spin polarized level. The CuO was experimentally synthesized and characterized with structural and optical methodologies. The band structure and density of states revealed the rise of band gaps at 1.24 and 1.03 eV with direct and indirect band gap nature, respectively. These values are in accordance with the experimental evidence at 1.28 and 0.96 eV; respectively, which were obtained by UV-Vis DRS. Such a behavior could be related to enhanced photocatalytic activity among copper oxide materials. Experimental evidence such as SEM images and work function measurements were also performed to evaluate the oxide. The redox potential suggests a catalytic character of tenorite (1 1 0) for the CO2 transformation through aldehydes (methanal) intermediate formation. Furthermore, a route through methylene glycol CH2(OH)(2) was also explored with the theoretical methodology. The reaction path exhibits an immediate reduction of H2O2 into a (OH)-O-center dot radical and an [OH](-) anion, in the first step. This (OH)-O-center dot radical attacks a double bond (C = O) of CO2 to form bicarbonate ([HCO3](-)) and subsequently, carbonic acid (H2CO3). The carbonic acid reacts with other (OH)-O-center dot radical to finally form orthocarbonic acid (C(OH)(4)).
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页数:12
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