[1] Mukherjee S,Cullen D A,Karakalos S,et al. Metal-Organic Framework-Derived Nitrogen-Doped Highly Disordered Carbon for Electrochemical Ammonia Synthesis Using N2 and H2O in Alkaline Electrolytes[J]. Nano Energy,2018,48:217-226. [2] Lv C,Yan C,Chen G,et al. An Amorphous Noble-Metal-Free Electrocatalyst that Enables Nitrogen Fixation under Ambient Conditions[J]. Angew Chem Int Ed,2018,57:6073-6076. [3] Shipman M A,Symes M D. Recent Progress Towards the Electrosynthesis of Ammonia from Sustainable Resources[J]. Catal Today,2017,286:57-68 [4] Li S J,Bao D,Shi M M,et al. Amorphizing of Au Nanoparticles by CeOx-RGO Hybrid Support Towards Highly Efficient Electrocatalyst for N2 Reduction under Ambient Conditions[J]. Adv Mater,2017,29:1700001. [5] Hao Y,Dong X,Zhai S,et al. Hydrogenated Bismuth Molybdate Nanoframe for Efficient Sunlight-Driven Nitrogen Fixation from Air[J]. Chem-Eur J,2016,22:18722-18728. [6] Burgess B K,Wherland S,Newton W E,et al. Nitrogenase Reactivity: Insight into the Nitrogen-Fixing Process Through Hydrogen-Inhibition and HD-Forming Reactions[J]. Biochemistry,1981,20:5140-5146. [7] Wang L,Xia M,Wang H,et al. Greening Ammonia toward the Solar Ammonia Refinery[J]. Joule,2018,2:1055-1074. [8] Zhu D,Zhang L,Ruther R E,et al. Photo-illuminated Diamond as a Solid-state Source of Solvated Electrons in Water for Nitrogen Reduction[J]. Nat Mater,2013,12:836-841. [9] Li X,Wang W,Jiang D,et al. Efficient Solar-Driven Nitrogen Fixation over Carbon-Tungstic-Acid Hybrids[J]. Chem-Eur J,2016,22:13819-13822. [10] Guo C,Ran J,Vasileff A,et al. Rational Design of Electrocatalysts and Photo(electro)catalysts for Nitrogen Reduction to Ammonia (NH3) under Ambient Conditions[J]. Energy Environ Sci,2018,11:45-56. [11] Yandulov D V,Schrock R R. Catalytic Reduction of Dinitrogen to Ammonia at a Single Molybdenum Center[J]. Science,2003,301:76-78. [12] Murakami T,Nishikiori T,Nohira T,et al. Electrolytic Synthesis of Ammonia in Molten Salts under Atmospheric Pressure[J]. J Am Chem Soc,2003,125:334-335. [13] Zhang R,Ren X,Shi X,et al. Enabling Effective Electrocatalytic N2 Conversion to NH3 by the TiO2 Nanosheets Array under Ambient Conditions[J]. ACS Appl Mater Interfaces,2018,10:28251-28255. [14] Kyriakou V,Garagounis I,Vasileiou E,et al. Progress in the Electrochemical Synthesis of Ammonia[J]. Catal Today,2017,286:2-13. [15] Singh A R,Rohr B A,Schwalbe J A,et al. Electrochemical Ammonia Synthesis-The Selectivity Challenge[J]. ACS Catal,2017,7:706-709. [16] Lu Y,Yang Y,Zhang T,et al. Photoprompted Hot Electrons from Bulk Cross-Linked Graphene Materials and Their Efficient Catalysis for Atmospheric Ammonia Synthesis[J]. ACS Nano,2016,10:10507-10515. [17] Wang X,Wang W,Qiao M,et al. Atomically Dispersed Au1 Catalyst towards Efficient Electrochemical Synthesis of Ammonia[J]. Sci Bull,2018,63:1246-1253. [18] Wang J,Yu L,Hu L,et al. Ambient Ammonia Synthesis via Palladium-Catalyzed Electrohydrogenation of Dinitrogen at Low Overpotential[J]. Nat Commun,2018,9:1-7. [19] Lin B,Liu Y,Heng L,et al. Morphology Effect of Ceria on the Catalytic Performances of Ru/CeO2 Catalysts for Ammonia Synthesis[J]. Ind Eng Chem Res,2018,57:9127-9135. [20] Wang D,Azofra L M,Harb M,et al. Energy-Efficient Nitrogen Reduction to Ammonia at Low Overpotential in Aqueous Electrolyte under Ambient Conditions[J]. ChemSusChem,2018,11:3416-3422. [21] Tao H,Choi C,Ding L,et al. Nitrogen Fixation by Ru Single-Atom Electrocatalytic Reduction[J]. Chemistry,2019,5:204-214. [22] Liu H M,Han S H,Zhao Y,et al. Surfactant-Free Atomically Ultrathin Rhodium Nanosheet Nanoassemblies for Efficient Nitrogen Electroreduction[J]. J Mater Chem A,2018,6:3211-3217. [23] Wang Y,Jia K,Pan Q,et al. Boron-Doped TiO2 for Efficient Electrocatalytic N2 Fixation to NH3 at Ambient Conditions[J]. ACS Sus Chem Eng,2019,7:117-122. [24] Chen S,Perathoner S,Ampelli C,et al. Electrocatalytic Synthesis of Ammonia at Room Temperature and Atmospheric Pressure from Water and Nitrogen on a Carbon-Nanotube-Based Electrocatalyst[J]. Angew Chem,2017,56:2699-2703. [25] Wang M,Liu S,Qian T,et al. Over 56.55% Faradaic Efficiency of Ambient Ammonia Synthesis Enabled by Positively Shifting the Reaction Potential[J]. Nat Commun,2019,10:1-8. [26] Cheng H,Ding L X,Chen G F,et al. Molybdenum Carbide Nanodots Enable Efficient Electrocatalytic Nitrogen Fixation under Ambient Conditions[J]. Adv Mater,2018,30:1803694. [27] Ren X,Cui G,Chen L,et al. Electrochemical N2 Fixation to NH3 under Ambient Conditions:Mo2N Nanorod as a Highly Efficient and Selective Catalyst[J]. Chem Commun,2018,54:8474-8477. [28] Zhang L,Ji X,Ren X,et al. Electrochemical Ammonia Synthesis via Nitrogen Reduction Reaction on a MoS2 Catalyst:Theoretical and Experimental Studies[J]. Adv Mater,2018,30:1800191. [29] Yao Y,Yao Y,Feng Q,et al. Chromium Oxynitride Electrocatalysts for Electrochemical Synthesis of Ammonia under Ambient Conditions[J]. Small Methods,2019,3:1800324 [30] Liu Y,Su Y,Quan X,et al. Facile Ammonia Synthesis from Electrocatalytic N2 Reduction under Ambient Conditions on N-Doped Porous Carbon[J]. ACS Catal,2018,8:1186-1191. [31] Song P,Wang H,Kang L,et al. Electrochemical Nitrogen Reduction to Ammonia at Ambient Conditions on Nitrogen and Phosphorus Co-Doped Porous Carbon[J]. Chem Commun,2019,55:687-690. [32] Song Y,Johnson D,Peng R,et al. A Physical Catalyst for the Electrolysis of Nitrogen to Ammonia[J]. Sci Adv,2018,4:e1700336 [33] Jin H,Guo C,Liu X,et al. Emerging Two-Dimensional Nanomaterials for Electrocatalysis[J]. Chem Rev,2018,118:6337-6408. [34] Huang L,Wu J,Han P,et al. NbO2 Electrocatalyst Toward 32% Faradaic Efficiency for N2 Fixation[J]. Small Methods,2019,3:1800386 [35] Liu Q,Zhang X,Zhang B,et al. Ambient N2 Fixation to NH3 Electrocatalyzed by a Spinel Fe3O4 Nanorod[J]. Nanoscale,2018,10:14386-14389. [36] Han J,Ji X,Ren X,et al. MoO3 Nanosheets for Efficient Electrocatalytic N2 Fixation to NH3[J]. J Mater Chem A,2018,6:12974-12977. [37] Wu X,Xia L,Wang Y,et al. Mn3O4 Nanocube: An Efficient Electrocatalyst toward Artificial N2 Fixation to NH3[J]. Small,2018,14:1803111. [38] Wang Z,Gong F,Zhang L,et al. Electrocatalytic Hydrogenation of N2 to NH3 by MnO: Experimental and Theoretical Investigations[J]. Adv Sci,2019,6:1801182. [39] Zhang L,Xie X Y,Wang H,et al. Boosting Electrocatalytic N2 Reduction by MnO2 with Oxygen Vacancies[J]. Chem Commun,2019,55:4627-4630. [40] Roche I,Chainet E,Chatenet M,et al. Carbon-Supported Manganese Oxide Nanoparticles as Electrocatalysts for the Oxygen Reduction Reaction (ORR) in Alkaline Medium: Physical Characterizations and ORR Mechanism[J]. J Phys Chem C,2007,111:1434-1443. [41] Watt G W,Chrisp J D. Spectrophotometric Method for Determination of Hydrazine[J]. Anal Chem,1952,24:2006-2008. |