 
 Journal of Inorganic Materials ›› 2020, Vol. 35 ›› Issue (10): 1142-1148.DOI: 10.15541/jim20200011
Special Issue: 能源材料论文精选(三):热电与燃料电池(2020)
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													LYU Ziye( ),TANG Yiping,CAO Huazhen,ZHENG Guoqu,HOU Guangya(
),TANG Yiping,CAO Huazhen,ZHENG Guoqu,HOU Guangya( )
)
												  
						
						
						
					
				
Received:2020-01-08
															
							
																	Revised:2020-03-04
															
							
															
							
																	Published:2020-10-20
															
							
																	Online:2020-03-20
															
						About author:LYU Ziye(1995-), male, Master candidate. E-mail: 2542990751@qq.com				
													Supported by:CLC Number:
LYU Ziye, TANG Yiping, CAO Huazhen, ZHENG Guoqu, HOU Guangya. Effect of V Doping on Electrocatalytic Performance of Ni-Co-S on Bacterial Cellulose-derived Carbon Aerogel[J]. Journal of Inorganic Materials, 2020, 35(10): 1142-1148.
 
																													Fig. 5 (a) CV curves of CA, NCS-n (n=1, 2, 5, 10) and V3-NCS-n (n=1,2); (b) Comparison of the peak current density and the average load amount of NCS-n (n=1, 2), Vx-NCS-n (x=3, 5, 10; n=1,2); (c) CV curves of V3-NCS-1 in 1 mol/L KOH at 10, 20, 30, 40, 50 mV/s sweep speed with inset showing the relationship between the peak current density and the square root of the sweep speed; (d) Relationship between the methanol concentration and the peak current density of V3-NCS-1
 
																													Fig. 6 (a) Oxidation peak current densities and (b) I-t curves of NCS-2 and V3-NCS-1 electrodes varied within 1000 CV cycles, and (c) XRD patterns of NCS-2 and V3-NCS-1 before and after 1000 cycles; (d) TEM image, (e) HAADF-STEM image and corresponding EDS element mappings of the particles loaded in NCS-2 after 1000 cycles
| [1] | GONG S, JIANG Z, SHI P , et al. Noble-metal-free heterostructure for efficient hydrogen evolution in visible region: molybdenum nitride/ ultrathin graphitic carbon nitride. Applied Catalysis B: Environmental , 2018,238:318-327. DOI URL | 
| [2] | LIU J, HE T, WANG Q , et al. Confining ultrasmall bimetallic alloys in porous N-carbon for use as scalable and sustainable electrocatalysts for rechargeable Zn-air batteries. Journal of Materials Chemistry A , 2019,7(20):12451-12456. DOI URL | 
| [3] | LIAO K, CHEN S, WEI H , et al. Micropores of pure nanographite spheres for long cycle life and high-rate lithium-sulfur batteries.  Journal of Materials Chemistry A, 2018,6(45):23062-23070. DOI URL | 
| [4] | ZHAI C Y, DU Y K, ZHU M S . Noble metal/semiconductor photoactivated electrodes for direct methanol fuel cell. Journal of Inorganic Materials, 2017,32(9):897-903. DOI URL | 
| [5] | LEI Y, WANG Y, LIU Y , et al. Realizing the atomic active center for hydrogen evolution electrocatalysts. Angewandte Chemie International Edition. Realizing the atomic active center for hydrogen evolution electrocatalysts. Angewandte Chemie International Edition, 2020, in press, doi: 10.1002/anie.201914647. | 
| [6] | MANSOR M, TIMMIATI S N, LIM K L , et al. Recent progress of anode catalysts and their support materials for methanol electrooxidation reaction. International Journal of Hydrogen Energy , 2019,44(29):14744-14769. DOI URL | 
| [7] | KOENIGSMANN C, WONG S S . One-dimensional noble metal electrocatalysts: a promising structural paradigm for direct methanol fuel cells. Energy & Environmental Science, 2011,4(4):1161-1176. DOI URL | 
| [8] | TIWARI J N, TIWARI R N, SINGH G , et al. Recent progress in the development of anode and cathode catalysts for direct methanol fuel cells. Nano Energy , 2013,2(5):553-578. DOI URL | 
| [9] | LI C, MALGRAS V, ALSHEHRI SM , et al. Electrochemical synthesis of mesoporous Pt nanowires with highly electrocatalytic activity toward methanol oxidation reaction. Electrochimica Acta , 2015,183:107-111. DOI URL | 
| [10] | ZHENG Y, ZHAN H, TANG H , et al. Atomic platinum layer coated titanium copper nitride supported on carbon nanotubes for the methanol oxidation reaction.  Electrochimica Acta, 2017,248:349-355. DOI URL | 
| [11] | CHEN D, HE Z, PEI S , et al. Pd nanoparticles supported on N and P dual-doped graphene as an excellent composite catalyst for methanol electro-oxidation.  Journal of Alloys and Compounds, 2019,785:781-788. DOI URL | 
| [12] | LUO S, GU R, SHI P , , et al. π-π interaction boosts catalytic oxygen evolution by self-supporting metal-organic frameworks. Journal of Power Sources. π-π interaction boosts catalytic oxygen evolution by self-supporting metal-organic frameworks. Journal of Power Sources, 2020, 448: 227406-1-10. | 
| [13] | GUO X, LIANG T, ZHANG D , et al. Facile fabrication of 3D porous nickel networks for electro-oxidation of methanol and ethanol in alkaline medium. Materials Chemistry and Physics , 2019,221:390-396. DOI URL | 
| [14] | LI J, LUO F, ZHAO Q , et al. Crystalline nickel boride nanoparticle agglomerates for enhanced electrocatalytic methanol oxidation. International Journal of Hydrogen Energy , 2019,44(41):23074-23080. DOI URL | 
| [15] | ZHANG J, XU C, ZHANG D , et al. Facile synthesis of a nickel sulfide (NiS) hierarchical flower for the electrochemical oxidation of H2O2 and the methanol oxidation reaction (MOR). Journal of the Electrochemical Society, 2017,164:B92-B96 DOI URL | 
| [16] | YUAN G, NIU X, CHEN Z , et al. Self-supported hierarchical Shell@Core Ni3S2@Ni foam composite electrocatalyst with high efficiency and long-term stability for methanol oxidation. ChemElectro Chem, 2018,5(17):2376-2382. | 
| [17] | CHEN Z, WANG Q, ZHANG X , et al. N-doped defective carbon with trace Co for efficient rechargeable liquid electrolyte-/all- solid-state Zn-air batteries. Science Bulletin , 2018,63(9):548-555. DOI URL | 
| [18] | WANG Q, YE K, XU L , et al. Carbon nanotube-encapsulated cobalt for oxygen reduction: integration of space confinement and N-doping. Chemical Communications , 2019,55(98):14801-14804. DOI URL PMID | 
| [19] | YANG J H, SONG X, ZHAO X , et al. Nickel phosphate materials regulated by doping cobalt for urea and methanol electro-oxidation. International Journal of Hydrogen Energy , 2019,44(31):16305-16314. DOI URL | 
| [20] | WU F, ZHANG Z, ZHANG F , et al. Exploring the role of cobalt in promoting the electroactivity of amorphous Ni-B nanoparticles toward methanol oxidation. Electrochimica Acta , 2018,287:115-123. DOI URL | 
| [21] | REZAEE S, SHAHROKHIAN S . Facile synthesis of petal-like NiCo/NiO-CoO/nanoporous carbon composite based on mixed- metallic MOFs and their application for electrocatalytic oxidation of methanol. Applied Catalysis B: Environmental, 2019,244:802-813. DOI URL | 
| [22] | JIA J Y, ZHANG W X, CHANG L , et al. Synthesis and photocatalytic activity of vanadium doped titania hollow microspheres.  Journal of Inorganic Materials, 2009,24(4):671-674. DOI URL | 
| [23] | YAN Y, LI B, GUO W , et al. Vanadium based materials as electrode materials for high performance supercapacitors. Journal of Power Sources , 2016,329:148-169. DOI URL | 
| [24] | XU X, XIONG F, MENG J , , et al. Vanadium-based nanomaterials: a promising family for emerging metal-ion batteries. Advanced Functional Materials. Vanadium-based nanomaterials: a promising family for emerging metal-ion batteries. Advanced Functional Materials, 2020,30(10): 1904398-1-36. DOI URL PMID | 
| [25] | MA L, ZHANG K, WANG S , et al. Vanadium doping over Ni3S2 nanosheet array for improved overall water splitting. Applied Surface Science, 2019,489:815-823. DOI URL | 
| [26] | LEI C, ZHOU W, FENG Q , et al. Charge engineering of Mo2C@defect-rich N-doped carbon nanosheets for efficient electrocatalytic H2 evolution. Nano-Micro Letters, 2019,11(1):45. DOI URL | 
| [27] | CALVILLO L, GANGERI M, PERATHONER S , et al. Synthesis and performance of platinum supported on ordered mesoporous carbons as catalyst for PEM fuel cells: effect of the surface chemistry of the support. International Journal of Hydrogen Energy , 2011,36(16):9805-9814. DOI URL | 
| [28] | SHI M, ZHANG W, LI Y , et al. Tungsten carbide-reduced graphene oxide intercalation compound as co-catalyst for methanol oxidation. Chinese Journal of Catalysis , 2016,37(11):1851-1859. DOI URL | 
| [29] | WANG Q, LEI Y, ZHU Y , et al. Edge defect engineering of nitrogen- doped carbon for oxygen electrocatalysts in Zn-Air batteries. ACS Applied Materials & Interfaces , 2018,10(35):29448-29456. DOI URL PMID | 
| [30] | MA L N, ZHAO N, BI Z J , et al. Bacterial cellulose based nano-biomaterials for energy storage applications. Journal of Inorganic Materials , 2019,35(2):145-157. | 
| [31] | WANG Y, LIU Y, XIA K , et al. NiCo2S4 nanoparticles anchoring on polypyrrole nanotubes for high-performance supercapacitor electrodes. Journal of Electroanalytical Chemistry, 2019,840:242-248. DOI URL | 
| [32] | BAIG F, HAMEED KHATTAK Y, JEMAI S , et al. Hydrothermal syntheses of vanadium doped α-Fe2O3 cubic particles with enhanced photoelectrochemical activity. Solar Energy, 2019,182:332-339. DOI URL | 
| [33] | ZHOU Y, LIU P, JIANG F , et al. Vanadium sulfide sub-microspheres: a new near-infrared-driven photocatalyst. Journal of Colloid and Interface Science , 2017,498:442-448. DOI URL PMID | 
| [34] | ZHANG H, LI H, SUN Z , , et al. One-step hydrothermal synthesis of NiCo2S4 nanoplates/nitrogen-doped mesoporous carbon composites as advanced electrodes for asymmetric supercapacitors. Journal of Power Sources., 2019, 439: 227082-1-9. | 
| [35] | HOU G Y, XIE Y Y, WU L K , et al. Electrocatalytic performance of Ni-Ti-O nanotube arrays/NiTi alloy electrode annealed under H2 atmosphere for electro-oxidation of methanol.  International Journal of Hydrogen Energy, 2016,41(22):9295-9302. DOI URL | 
| MABAYOJE O, SHOOLA A, WYGANT B R , et al. The role of anions in metal chalcogenide oxygen evolution catalysis: electrodeposited thin films of nickel sulfide as “pre-catalysts”. ACS Energy Letters , 2016,1(1):195-201. DOI URL | 
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