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REFERENCES
1. Galloway JN, Townsend AR, Erisman JW, et al. Transformation of the nitrogen cycle: recent trends, questions, and potential solutions.
Science 2008;320:889-92. DOI
2. Klerke A, Christensen CH, Nørskov JK, Vegge T. Ammonia for hydrogen storage: challenges and opportunities. J Mater Chem
2008;18:2304-10. DOI
3. Guo J, Chen P. Catalyst: NH as an energy carrier. Chem 2017;3:709-12. DOI
3
4. Gao S, Liu X, Wang Z, et al. Spin regulation for efficient electrocatalytic N reduction over diatomic Fe-Mo catalyst. J Colloid
2
Interface Sci 2023;630:215-23. DOI
5. Zhang G, Zhang X, Meng Y, Pan G, Ni Z, Xia S. Layered double hydroxides-based photocatalysts and visible-light driven
photodegradation of organic pollutants: a review. Chem Eng J 2020;392:123684. DOI
6. Chen JG, Crooks RM, Seefeldt LC, et al. Beyond fossil fuel-driven nitrogen transformations. Science 2018;360:eaar6611. DOI
PubMed PMC
7. Yang X, Nash J, Anibal J, et al. Mechanistic insights into electrochemical nitrogen reduction reaction on vanadium nitride
nanoparticles. J Am Chem Soc 2018;140:13387-91. DOI
8. Gao Y, Zhuo H, Cao Y, et al. A theoretical study of electrocatalytic ammonia synthesis on single metal atom/MXene. Chinese J Catal
2019;40:152-9. DOI
9. Wu J, Li JH, Yu YX. Single Nb or W atom-embedded BP monolayers as highly selective and stable electrocatalysts for nitrogen
fixation with low-onset potentials. ACS Appl Mater Interfaces 2021;13:10026-36. DOI PubMed
10. Du P, Huang Y, Zhu G, et al. Nitrogen reduction reaction on single cluster catalysts of defective PC -trimeric or tetrameric transition
6
metal. Phys Chem Chem Phys 2022;24:2219-26. DOI PubMed
11. Andersen SZ, Čolić V, Yang S, et al. A rigorous electrochemical ammonia synthesis protocol with quantitative isotope measurements.
Nature 2019;570:504-8. DOI
12. Zhang L, Meng Y, Shen H, et al. High-efficiency photocatalytic ammonia synthesis by facet orientation-supported heterojunction
Cu O@BiOCl[100] boosted by double built-in electric fields. Inorg Chem 2022;61:6045-55. DOI
2
13. Li L, Tang C, Yao D, Zheng Y, Qiao SZ. Electrochemical nitrogen reduction: identification and elimination of contamination in
electrolyte. ACS Energy Lett 2019;4:2111-6. DOI
14. Hao YC, Guo Y, Chen LW, et al. Promoting nitrogen electroreduction to ammonia with bismuth nanocrystals and potassium cations in
water. Nat Catal 2019;2:448-56. DOI
15. Singh AR, Rohr BA, Statt MJ, Schwalbe JA, Cargnello M, Nørskov JK. Strategies toward selective electrochemical ammonia
synthesis. ACS Catal 2019;9:8316-24. DOI
16. Martín AJ, Shinagawa T, Pérez-ramírez J. Electrocatalytic reduction of nitrogen: from haber-bosch to ammonia artificial leaf. Chem
2019;5:263-83. DOI
17. Han B, Meng H, Li F, Zhao J. Fe cluster anchored on the C N monolayer for efficient electrochemical nitrogen fixation. Catalysts
3 2
2020;10:974. DOI
18. Yu L, Li F. Pt dimer anchored vertically in defective BN monolayer as an efficient catalyst for N reduction: a DFT study. Catalysts
2
2
2022;12:1387. DOI
-1
19. Geng Z, Liu Y, Kong X, et al. Achieving a record-high yield rate of 120.9 μg NH 3 ·mg cat -1 ·h for N electrochemical reduction over Ru
2
single-atom catalysts. Adv Mater 2018;30:1803498. DOI
20. Tao H, Choi C, Ding LX, et al. Nitrogen fixation by Ru single-atom electrocatalytic reduction. Chem 2019;5:204-14. DOI
21. Han Z, Huang S, Zhang J, et al. Single Ru-N site-embedded porous carbons for electrocatalytic nitrogen reduction. ACS Appl Mater
4
Interfaces 2023;15:13025-32. DOI
22. Nørskov JK, Bligaard T, Hvolbaek B, Abild-Pedersen F, Chorkendorff I, Christensen CH. The nature of the active site in
heterogeneous metal catalysis. Chem Soc Rev 2008;37:2163-71. DOI PubMed
2
4
23. Azofra LM, Li N, MacFarlane DR, Sun C. Promising prospects for 2D d -d M C transition metal carbides (MXenes) in N capture
2
3
2
and conversion into ammonia. Energy Environ Sci 2016;9:2545-9. DOI
24. Choi C, Back S, Kim NY, Lim J, Kim YH, Jung Y. Suppression of hydrogen evolution reaction in electrochemical N reduction using
2
single-atom catalysts: a computational guideline. ACS Catal 2018;8:7517-25. DOI
25. Skúlason E, Bligaard T, Gudmundsdóttir S, et al. A theoretical evaluation of possible transition metal electro-catalysts for N
2
reduction. Phys Chem Chem Phys 2012;14:1235-45. DOI
26. Liu L, Corma A. Metal catalysts for heterogeneous catalysis: from single atoms to nanoclusters and nanoparticles. Chem Rev
2018;118:4981-5079. DOI PubMed PMC

