Role of oxide support in electrocatalytic nitrate reduction on Cu

被引:6
作者
Carvalho, O. Quinn [1 ]
Jones, Sophia R. S. [1 ]
Berninghaus, Ashley E. [1 ]
Hilliard, Richard F. [1 ]
Radniecki, Tyler S. [1 ]
Stoerzinger, Kelsey A. [1 ,2 ]
机构
[1] Oregon State Univ, Sch Chem Biol & Environm Engn, Corvallis, OR 97331 USA
[2] Pacific Northwest Natl Lab, Phys Sci Div, Richland, WA USA
来源
ELECTROCHEMICAL SCIENCE ADVANCES | 2024年 / 4卷 / 01期
关键词
ELECTROCHEMICAL REDUCTION; PT(111) ELECTRODE; PHOSPHATE; WATER; COPPER; FILMS; IONS; SPECTROSCOPY; ADSORPTION; SURFACES;
D O I
10.1002/elsa.202100201
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The electrochemical nitrate reduction reaction (NO3RR) has the potential for distributed water treatment and renewable chemical synthesis. Cu is an active monometallic electrocatalyst for the NO3RR in acidic and alkaline electrolytes, where activity is limited by the reduction of adsorbed nitrate to nitrite. Oxygen-vacancy forming metal-oxide supports provide sites for N-O bond activation in thermal reduction, impacting product distribution as well. Here we compare the electrochemical NO3RR activity of Cu deposited on two metal-oxide supports (cerium dioxide [Cu/CeO2-delta] and fluorine-doped tin dioxide [Cu/FTO]) to a Cu foil benchmark. Considering activity in phosphate-buffered neutral media, nitrate and adsorbed hydrogen compete for surface sites under NO3RR conditions. The less-cathodic overpotential on Cu/CeO2-delta compared to Cu/FTO is attributed to stronger nitrate adsorption, similar to thermal nitrate reduction. Utilization of CeO2-delta as an electrocatalyst support slightly shifting product distribution toward more oxidized products, either by enhancing nitrate affinity or by a more dynamic process involving the formation and healing of oxygen vacancies (upsilon(center dot center dot)(O)). These results suggest supporting catalysts on metal oxides may enhance activity by promoting the adsorption of anionic reactants on cathodic electrocatalysts.
引用
收藏
页数:12
相关论文
共 90 条
[1]   The formation of cerium(III) hydroxide nanoparticles by a radiation mediated increase in local pH [J].
Abellan, P. ;
Moser, T. H. ;
Lucas, I. T. ;
Grate, J. W. ;
Evans, J. E. ;
Browning, N. D. .
RSC ADVANCES, 2017, 7 (07) :3831-3837
[2]   Infrared spectroscopic characterization of phosphate binding at the goethite-water interface [J].
Ahmed, Ashour A. ;
Gypser, Stella ;
Leinweber, Peter ;
Freese, Dirk ;
Kuehn, Oliver .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2019, 21 (08) :4421-4434
[3]   Studies of the formation of cerium-rich protective films using x-ray absorption near-edge spectroscopy and rotating disk electrode methods [J].
Aldykiewicz, AJ ;
Davenport, AJ ;
Isaacs, HS .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1996, 143 (01) :147-154
[4]  
[Anonymous], 2020, R. Soc. Ammonia: zero-carbon fertilizer, fuel energy store, P1
[5]   Potential-dependent reorientation of water molecules at an electrode/electrolyte interface studied by surface-enhanced infrared absorption spectroscopy [J].
Ataka, K ;
Yotsuyanagi, T ;
Osawa, M .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (25) :10664-10672
[6]   Modelling and Interpretation of Adsorption Isotherms [J].
Ayawei, Nimibofa ;
Ebelegi, Augustus Newton ;
Wankasi, Donbebe .
JOURNAL OF CHEMISTRY, 2017, 2017
[7]   Electrocatalytic reduction of nitrate on copper electrode in alkaline solution [J].
Badea, Gabriela Elena .
ELECTROCHIMICA ACTA, 2009, 54 (03) :996-1001
[8]   FTIR spectroscopy combined with quantum chemical calculations to investigate adsorbed nitrate on aluminium oxide surfaces in the presence and absence of co-adsorbed water [J].
Baltrusaitis, Jonas ;
Schuttlefield, Jennifer ;
Jensen, Jan H. ;
Grassian, Vicki H. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2007, 9 (36) :4970-4980
[9]   Electron Transfer Reorganization Energies in the Electrode Electrolyte-Double Layer [J].
Bangle, Rachel E. ;
Schneider, Jenny ;
Piechota, Eric J. ;
Troian-Gautier, Ludovic ;
Meyer, Gerald J. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2020, 142 (02) :674-679
[10]  
BARD AJ, 2001, ELECTROCHEMICAL METH