[1] Samimi A, Zarinabadi S. Reduction of greenhouse gases emission and effect on environment[J].The Journal of American Science,2012,8(8): 1011-1015.
[2] Karl T R, Trenberth K E. Modern global climate change[J].Science,2003,302(5651): 1719-1723.
[3] Ravishankara A R, Daniel J S, Portmann R W. Nitrous oxide (N2O): the dominant ozone-depleting substance emitted in the 21st century[J].Science,2009,326(5949): 123-125.
[4] Pérez-Ramírez J. Prospects of N2O emission regulations in the European fertilizer industry[J].Applied Catalysis B: Environmental,2007,70(1-4): 31-35.
[5] Blagojevic V, Orlova G, Bohme D K. O-atom transport catalysis by atomic cations in the gas phase: reduction of N2O by CO[J].Journal of the American Chemical Society,2005,127(10): 3545-3555.
[6] Rondinelli F, Russo N, Toscano M. On the Pt+ and Rh+ catalytic activity in the nitrous oxide reduction by carbon monoxide[J].Journal of chemical theory and computation,2008,4(11): 1886-1890.
[7] Xu X, Yang E, Li J, et al. A DFT study of CO catalytic oxidation by N2O or O2 on the Co3O4 (110) surface[J].Chem.Cat.Chem.,2009,1(3): 384-392.
[8] Kartha K, Pai M, Banerjee A, et al. Modified surface and bulk properties of Fe-substituted lanthanum titanates enhances catalytic activity for CO+N2O reaction[J].Journal of Molecular Catalysis A: Chemical,2011,335(1-2): 158-168.
[9] Gholizadeh R, Yu Y. N2O+CO reaction over Si- and Se-doped graphenes: an ab initio DFT study[J].Applied Surface Science,2015,357: 1187-1195.
[10] Zeng R, Feller M, Diskin-Posner Y, et al. CO oxidation by N2O homogeneously catalyzed by ruthenium hydride pincer complexes indicating a new mechanism[J].Journal of the American Chemical Society,2018,140(23): 7061-7064.
[11] Arenas-Alatorre J, Gómez-Cortés A, Avalos-Borja M, et al. Surface properties of Ni-Pt/SiO2 catalysts for N2O decomposition and reduction by H2[J].The Journal of Physical Chemistry B,2005,109(6): 2371-2376.
[12] Giese P, Kirsch H, Wolf M, et al. Reduction of N2O on MgO/Ag (100) via UV-photoinduced trapped electrons[J].The Journal of Physical Chemistry C,2011,115(20): 10012-10018.
[13] Tzitzios V, Georgakilas V. Catalytic reduction of N2O over Ag-Pd/Al2O3 bimetallic catalysts[J].Chemosphere,2005,59(6): 887-891.
[15] Wang Q, Fan G, Xu H, et al. C-doped boron nitride nanotubes for the catalysis of acetylene hydrochlorination: a density functional theory study[J].Molecular Catalysis,2020,488: 110853.
[16] Esrafili M, Saeidi N. Si-embedded boron-nitride nanotubes as an efficient and metal-free catalyst for NO oxidation[J].Superlattices and microstructures,2015,81: 7-15.
[17] Jin C, Lin F, Suenaga K, et al. Fabrication of a freestanding boron nitride single layer and its defect assignments[J].Physical Review Letters,2009,102(19): 188-191.
[18] Esrafili M. Single Si atom supported on defective boron nitride nanosheet as a promising metal-free catalyst for N2O reduction by CO or SO2 molecule: a computational study[J].International Journal of Quantum Chemistry,2018,118: 25646.
[19] Esrafili M, Saeidi N. Carbon-doped boron nitride nanosheet as a promising catalyst for N2O reduction by CO or SO2 molecule: a comparative DFT study[J].Applied Surface Science,2018,444: 584-589.
[20] Esrafili M, Saeidi N. N2O+SO2 reaction over Si-and C-doped boron nitride nanotubes: A comparative DFT study[J].Applied Surface Science,2017,403: 43-50.
[23] Komsa H P, Kotakoski J, Kurasch S, et al. Two-dimensional transition metal dichalcogenides under electron irradiation: defect production and doping[J].Physical Review Letters,2012,109(3): 035503.
[24] Moradi M. N2O reduction over hexagonal BN nanosheet: effects of Stone-Wales defect and carbon pair doping[J].Structural Chemistry,2014,25(5): 1457-1463.