Journal of Synthetic Crystals, Volume. 51, Issue 8, 1413(2022)
Preparation of Phosphorus-Doped Mesoporous Carbon and Its Electrochemical Property
[2] [2] AROULMOJI V, PRIYADHARSINI C, ANBARASAN P, et al. Synthesize, characterization and electrochemical investigations of cobalt oxide nanoparticles to supercapacitor application[J]. Aegaeum, 2020, 8(8): 750.
[3] [3] VARGHEESE S, DINESH M, KAVYA K V, et al. Triazine-based 2D covalent organic framework-derived nitrogen-doped porous carbon for supercapacitor electrode[J]. Carbon Letters, 2021, 31(5): 879-886.
[5] [5] NER O, ASLAN N, SAROGˇLU A, et al. Facile preparation of commercial Bi2O3 nanoparticle decorated activated carbon for pseudocapacitive supercapacitor applications[J]. Journal of Materials Science: Materials in Electronics, 2021, 32(12): 15981-15994.
[6] [6] CHAMEH B, MORADI M, HAJATI S, et al. Design and construction of ZIF(8 and 67) supported Fe3O4 composite as advanced materials of high performance supercapacitor[J]. Physica E: Low-Dimensional Systems and Nanostructures, 2021, 126: 114442.
[8] [8] HOU Z X, SHI P, ZOU S N. Three-dimensional porous graphene/polyaniline hybrids for high performance supercapacitor electrodes[J]. Research and Application of Materials Science, 2020, 2(1): 17-22.
[9] [9] ASKARI M B, SALARIZADEH P, SEIFI M, et al. Binary mixed molybdenum cobalt sulfide nanosheets decorated on rGO as a high-performance supercapacitor electrode[J]. Nanotechnology, 2020, 31(27): 275406.
[10] [10] ZHANG Y T, LIU M N, SUN S S, et al. The preparation and characterization of SnO2/rGO nanocomposites electrode materials for supercapacitor[J]. Advanced Composites Letters, 2020, 29: 2633366X2090983.
[11] [11] MO T M, ZENG L, WANG Z X, et al. Symmetrizing cathode-anode response to speed up charging of nanoporous supercapacitors[J]. Green Energy & Environment, 2022, 7(1): 95-104.
[12] [12] POTPHODE D, SHARMA C S. Pseudocapacitance induced candle soot derived carbon for high energy density electrochemical supercapacitors: non-aqueous approach[J]. Journal of Energy Storage, 2020, 27: 101114.
[14] [14] HU Y, JENSEN J O, ZHANG W, et al. Hollow spheres of iron carbide nanoparticles encased in graphitic layers as oxygen reduction catalysts[J]. Angewandte Chemie International Edition, 2014, 53(14): 3675-3679.
[15] [15] MA T Y, DAI S, JARONIEC M, et al. Metal-organic framework derived hybrid Co3O4-carbon porous nanowire arrays as reversible oxygen evolution electrodes[J]. Journal of the American Chemical Society, 2014, 136(39): 13925-13931.
[17] [17] MASA J, XIA W, SINEV I, et al. MnxOy/NC and CoxOy/NC nanoparticles embedded in a nitrogen-doped carbon matrix for high-performance bifunctional oxygen electrodes[J]. Angewandte Chemie International Edition, 2014, 53(32): 8508-8512.
[18] [18] MORALES-GUIO C G, YURANOV I, KIWI-MINSKER L. Highly selective catalytic reduction of nitro- to azoarenes under ambient conditions[J]. Topics in Catalysis, 2014, 57(17/18/19/20): 1526-1532.
[21] [21] WU S Q, YIN Y B, WEI D H, et al. Synthesis of nitrogen-doped porous carbon and partial poly (2, 2'-dithiodianiline) composite as advanced supercapacitor electrode materials[J]. Journal of Materials Science: Materials in Electronics, 2021, 32(7): 9332-9344.
[22] [22] KIM J, LEE J, YUN J, et al. Functionality of dual-phase lithium storage in a porous carbon host for lithium-metal anode[J]. Advanced Functional Materials, 2020, 30(15): 1910538.
[24] [24] CUI F J, DENG Q F, ZHAO H P, et al. Ionic liquid promoted synthesis of nitrogen, phosphorus, and fluorine triple-doped mesoporous carbon as metal-free electrocatalyst for oxygen reduction reaction[J]. Ionics, 2020, 26(9): 4609-4619.
[25] [25] ZHANG W T, YU H, TANG D H, et al. Synthesis of MoS2 nanoparticles embedded, N, S co-doped mesoporous carbon via molten salt method as hydrogen evolution electrocatalyst under alkaline and neutral conditions[J]. International Journal of Hydrogen Energy, 2021, 46(27): 13936-13945.
[26] [26] SAMIEE L, HASSANI S S. N and S co-doped ordered mesoporous carbon: an efficient electrocatalyst for oxygen reduction reaction in microbial fuel cells[J]. Current Nanoscience, 2020, 16(4): 625-638.
[27] [27] YANG D S, BHATTACHARJYA D, SONG M Y, et al. Highly efficient metal-free phosphorus-doped platelet ordered mesoporous carbon for electrocatalytic oxygen reduction[J]. Carbon, 2014, 67: 736-743.
[28] [28] ZHU Y P, LIU Y L, LIU Y P, et al. Direct synthesis of phosphorus-doped mesoporous carbon materials for efficient electrocatalytic oxygen reduction[J]. ChemCatChem, 2015, 7(18): 2903-2909.
[29] [29] YANG D S, BHATTACHARJYA D, INAMDAR S, et al. Phosphorus-doped ordered mesoporous carbons with different lengths as efficient metal-free electrocatalysts for oxygen reduction reaction in alkaline media[J]. Journal of the American Chemical Society, 2012, 134(39): 16127-16130.
[30] [30] ZHANG C Z, MAHMOOD N, YIN H, et al. Synthesis of phosphorus-doped graphene and its multifunctional applications for oxygen reduction reaction and lithium ion batteries[J]. Advanced Materials, 2013, 25(35): 4932-4937.
[31] [31] WU J, ZHENG X J, JIN C, et al. Ternary doping of phosphorus, nitrogen, and sulfur into porous carbon for enhancing electrocatalytic oxygen reduction[J]. Carbon, 2015, 92: 327-338.
[32] [32] LIN G F, WANG Q, YANG X, et al. Preparation of phosphorus-doped porous carbon for high performance supercapacitors by one-step carbonization[J]. RSC Advances, 2020, 10(30): 17768-17776.
[33] [33] CHEN W S, ZHAO Z X, YU X. Phosphorus-modulated controllably oxidized carbon nanotube architectures for the ultrahigh energy density of pseudocapacitive capacitors[J]. Electrochimica Acta, 2020, 341: 136044.
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LIU Huan, XIE Yulong, ZHAO Suqin. Preparation of Phosphorus-Doped Mesoporous Carbon and Its Electrochemical Property[J]. Journal of Synthetic Crystals, 2022, 51(8): 1413
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Received: May. 2, 2022
Accepted: --
Published Online: Sep. 26, 2022
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CSTR:32186.14.