Electrochemical synthesis of ammonia in solid electrolyte cells

被引:111
作者
Garagounis, Ioannis [1 ,2 ]
Kyriakou, Vasileios [1 ,2 ]
Skodra, Aglaia [2 ]
Vasileiou, Eirini [1 ,2 ]
Stoukides, Michael [1 ,2 ]
机构
[1] Aristotle Univ Thessaloniki, Dept Chem Engn, Thessaloniki, Greece
[2] Chem Processes & Energy Resources Inst, Ctr Res & Technol Hellas, Thessaloniki, Greece
关键词
ammonia synthesis; solid electrolytes; proton conductors; oxygen conductors; solid state ammonia synthesis;
D O I
10.3389/fenrg.2014.00001
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Developed in the early 1900s, the "Haber Bosch" synthesis is the dominant NH3 synthesis process. Parallel to catalyst optimization, current research efforts are also focused on the investigation of new methods for ammonia synthesis, including the electrochemical synthesis with the use of solid electrolyte cells. Since the first report on Solid State Ammonia Synthesis (SSAS), more than 30 solid electrolyte materials were tested and at least 15 catalysts were used as working electrodes. Thus far, the highest rate of ammonia formation reported is 1.13 x 10(-8) mols(-1) cm(-2), obtained at 80 degrees C with a Nafion solid electrolyte and a mixed oxide, SmFe0.7Cu0.1Ni0.2O3, cathode. At high temperatures (>500 degrees C), the maximum rate was 9.5 x 10(-9) mols(-1) cm(-2) using Ce0.8Y0.2O2-delta-[Ca-3(PO)(2)-K3PO4] as electrolyte and Ag Pd as cathode. In this paper, the advantages and the disadvantages of SSAS vs. the conventional process and the requirements that must be met in order to promote the electrochemical process into an industrial level are discussed.
引用
收藏
页数:10
相关论文
共 73 条
[51]   Electrocatalytic synthesis of ammonia from steam and nitrogen at atmospheric pressure [J].
Skodra, A. ;
Stoukides, M. .
SOLID STATE IONICS, 2009, 180 (23-25) :1332-1336
[52]   A theoretical evaluation of possible transition metal electro-catalysts for N2 reduction [J].
Skulason, Egill ;
Bligaard, Thomas ;
Gudmundsdottir, Sigridur ;
Studt, Felix ;
Rossmeisl, Jan ;
Abild-Pedersen, Frank ;
Vegge, Tejs ;
Jonsson, Hannes ;
Norskov, Jens K. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2012, 14 (03) :1235-1245
[53]   Energetics and mechanism of a room-temperature catalytic process for ammonia synthesis (Schrock cycle): Comparison with biological nitrogen fixation [J].
Studt, F ;
Tuczek, F .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2005, 44 (35) :5639-5642
[54]   Science, development - and global issues [J].
Topsoe, Haldor .
TOPICS IN CATALYSIS, 1994, 1 (3-4) :185-192
[55]   LITHIUM-MEDIATED ELECTROCHEMICAL REDUCTION OF HIGH-PRESSURE N2 TO NH3 [J].
TSUNETO, A ;
KUDO, A ;
SAKATA, T .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1994, 367 (1-2) :183-188
[56]  
Vayenas CG., 2001, ELECTROCHEMICAL ACTI, P111, DOI [10.1007/0-306-47551-0_4, DOI 10.1007/0-306-47551-0_4]
[57]   Bridging electrochemistry and heterogeneous catalysis [J].
Vayenas, Costas G. .
JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2011, 15 (7-8) :1425-1435
[58]   Non-Faradaic electrochemical activation of catalysis [J].
Vayenas, Costas G. ;
Koutsodontis, Costas G. .
JOURNAL OF CHEMICAL PHYSICS, 2008, 128 (18)
[59]   Synthesis of ammonia from natural gas at atmospheric pressure with doped ceria-Ca3(PO4)2-K3PO4 composite electrolyte and its proton conductivity at intermediate temperature [J].
Wang, Ben Hui ;
Wang, Ji De ;
Liu, Rui Quan ;
Xie, Ya Hong ;
Li, Zhi Jie .
JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2007, 11 (01) :27-31
[60]  
Wang BH, 2005, CHINESE J INORG CHEM, V21, P1551