Ammonia Synthesis from Electrochemical Reduction of Nitrate Using Boron-Doped Diamond Electrodes

被引:4
作者
Kuramochi, Satoru [1 ]
Fiorani, Andrea [1 ]
Einaga, Yasuaki [1 ]
机构
[1] Keio Univ, Dept Chem, Yokohama 2238522, Japan
关键词
ammonia; boron-doped diamond; nitrate; reduction; kinetics constant; ELECTROCATALYTIC REDUCTION; OXYGEN REDUCTION; CO2; REDUCTION; ELECTROREDUCTION; NO3; MECHANISMS; NITRITE; ANIONS;
D O I
10.1021/acssuschemeng.4c05081
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, we investigated ammonia synthesis from electrochemical nitrate reduction using a boron-doped diamond (BDD) electrode. Several parameters were optimized, including the boron doping level in BDD, reduction potential, cell type, and electrolyte, to reach an ammonia production rate of 67 +/- 12 mu mol cm(-2) h(-1) with a Faradaic efficiency of 98 +/- 6%. The ammonia production rate could be enhanced up to 184 mu mol cm(-2) h(-1) by adjusting the boron doping level. From kinetic measurements during ammonia synthesis, the time dependence of NO3-, NO2-, and NH3 concentrations confirmed that the reaction of electrochemical nitrate reduction can be described by two sequential reactions: NO3- reduction to NO2- and the susbequent reduction of NO2- to NH3. Among the conditions studied, the addition of NaOH, which decreased the charge transfer resistance of electron transfer and increased the ionic conductivity, was found to enhance the rate constant of both reactions, with a significantly larger effect on NO2- to NH3. In addition, comparison with other electrode materials, namely Cu, Ti, and glassy carbon confirmed the superior quality of the BDD electrode in terms of production rate, Faradaic efficiency, and durability.
引用
收藏
页码:12643 / 12651
页数:9
相关论文
共 72 条
[1]  
[Anonymous], 1974, ATLAS ELECTROCHEMICA, V2
[2]  
Appl M., 2012, Ullmann's Encyclopedia of Industrial Chemistry, DOI [10.1002/14356007.a02143.pub3, DOI 10.1002/14356007.A02143.PUB3]
[3]   Combined Effects of Concentration, pH, and Polycrystalline Copper Surfaces on Electrocatalytic Nitrate-to-Ammonia Activity and Selectivity [J].
Barrera, Luisa ;
Silcox, Rachel ;
Giammalvo, Katherine ;
Brower, Erika ;
Isip, Emily ;
Chandran, Rohini Bala .
ACS CATALYSIS, 2023, 13 (07) :4178-4192
[5]   The band structure of diamond [J].
Calzaferri, G ;
Rytz, R .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (26) :11122-11124
[6]   Ecological and toxicological effects of inorganic nitrogen pollution in aquatic ecosystems: A global assessment [J].
Camargo, Julio A. ;
Alonso, Alvaro .
ENVIRONMENT INTERNATIONAL, 2006, 32 (06) :831-849
[7]   The effect of salts used in textile dyeing on microbial decolourisation of a reactive azo dye [J].
Carliell, CM ;
Barclay, SJ ;
Shaw, C ;
Wheatley, AD ;
Buckley, CA .
ENVIRONMENTAL TECHNOLOGY, 1998, 19 (11) :1133-1137
[8]   NITROGEN FIXATION [J].
CHATT, J ;
LEIGH, GJ .
CHEMICAL SOCIETY REVIEWS, 1972, 1 (01) :121-&
[9]   Limitations of Ammonia as a Hydrogen Energy Carrier for the Transportation Sector [J].
Chatterjee, Sudipta ;
Parsapur, Rajesh Kumar ;
Huang, Kuo-Wei .
ACS ENERGY LETTERS, 2021, 6 (12) :4390-4394
[10]   Electrodeposition of Cu-Rh alloys and their use as cathodes for nitrate reduction [J].
Comisso, Nicola ;
Cattarin, Sandro ;
Fiameni, Stefania ;
Gerbasi, Rosalba ;
Mattarozzi, Luca ;
Musiani, Marco ;
Vazquez-Gomez, Lourdes ;
Verlato, Enrico .
ELECTROCHEMISTRY COMMUNICATIONS, 2012, 25 :91-93