박사

Carbon Materials Supported Molybdenum Disulfide for Hydrogen Evolution Reaction = 탄소 재료는 수소 진화의 반응에 대한 이황화 몰리브덴 지원

논문상세정보
' Carbon Materials Supported Molybdenum Disulfide for Hydrogen Evolution Reaction = 탄소 재료는 수소 진화의 반응에 대한 이황화 몰리브덴 지원' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Ambient Plasma treatment
  • Carbon Nanotube
  • Graphene Oxide
  • Hydrogen and Oxygen Evolution Reaction
  • Methanol
  • Molybdenum Disulfide
  • Reduced Graphene Oxide
  • activated carbon
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
192 0

0.0%

' Carbon Materials Supported Molybdenum Disulfide for Hydrogen Evolution Reaction = 탄소 재료는 수소 진화의 반응에 대한 이황화 몰리브덴 지원' 의 참고문헌

  • ¡°Novel Ternary MoS2/C-ZnOComposite with Efficient Performance in Photocatalytic NH3 Synthesis under Simulated Sunlight
    1.125694444 [2018]
  • ¡°Atomically thin MoS2 : A new direct-gap semiconductor ,
    4.384027778 [2010]
  • second order raman spectrum of MoS2
    14 857-860 [1974]
  • et all , MoS2 Decorated Carbon Nanofibers as Efficient and Durable Electrocatalyst for Hydrogen Evolution Reaction
    3:33 [2017]
  • economic and environmental impacts of biomassbased hydrogen
    34:3589–603 [2009]
  • continuous and high electrical performances of bilayer to few layers MoS2 fabricated by RF sputtering via post-deposition annealing method
    Rep. 6 ( [2016]
  • al. , Porous metallic MoO2-supported MoS2 Nanosheets for enhanced electrocatalytic activity in hydrogen evolution reaction
    7 ( [2015]
  • [9] W. Hu, G. Han, Y. Liu, B. Dong and Y.Chai et al,. Int. J. Hydrogen Energy. 40, 6552 (2015).
    40 , 6552 [2015]
  • [8] Y. Liu, X. Li, G. Han, B. Dong and W. Hu et al,. Int. J. Hydrogen Energy. 42, 2054 (2017).
    42 , 2054 [2017]
  • [7] Z. Zhou, N. Mahmood, Y. Zhang, L. Pan and L. Wang et al,. J. EnergyChem. 26, 1223 (2017).
    26 , 1223 [2017]
  • [7] Bosch, Carl "Process of producing ammonia". U.S. Patent 990 (1908) 191
  • [6]. Elton, J. G. S. & Efthimios, K. Electrically driven tuning of the dielectric constantin MoS2 layers, ACS Nano. 7 (2013) 10741.
  • [6] X. Sun, J. Huo, Y. Yang, L. Xu and S. Wang, J. EnergyChem. 26, 1136 (2017).
    26 , 1136 [2017]
  • [6] Appl, M. "The Haber–Bosch Process and the Development of Chemical Engineering". A Century of Chemical Engineering. New York: Plenum Press. 29(1982). 978-0-306-40895-3.
  • [5] Olga b and Pavels, The resources and methods of hydrogen production, Acta Geodyn. Geomater 2010; 158: 175–188.
  • [5] Boak, Ken. "Gasification Historical archive - Mond Gas". Retrieved October 17, 2012.
  • [5] B. Luo, T. Huang, Y. Zhu and D. Wang, J. EnergyChem. 26, 1147 (2017).
    26 , 1147 [2017]
  • [4]C.Cheng, S.S.A. Shah, T. Najam, L. Zhang and X. Qi et al,. J. Energy.Chem. 26, 1245 (2017).
    26 , 1245 [2017]
  • [42] F.C. Anson, Application of potentiostatic current integration to the study of the adsorption of cobalt (III)-(Ethylenedinitrilo(tetraacetate) on mercury electrodes, Anal. Chem. 36 (1964) 932–934.
  • [40] Benck J D,Chen Z, Kuritzky L Y, Forman A J, Jaramillo T F, ACSCatal, 2012; 2: 1916.
    1.413888889 [2012]
  • [40] Anson FC .Application of potentiostatic current integration to the study of the adsorption of cobalt (III)-(Ethylenedinitrilo(tetraacetate) on mercury electrodes. Anal Chem 1964; 36:932–934
  • [3] X.X. Zou and Y. Zhang,Chem. Soc. Rev. 44, 5148 (2015).
    44 , 5148 [2015]
  • [35] Y.-C. Lin, et al. ACS Nano 8 (4) (2014) 3715.
    8 ( 4 ) ( [2014]
  • [35] S. S. Tuhin, M. Sagar, Exfoliated MoS2 Sheets and Reduced Graphene Oxide-An Excellent and Fast Anode for Sodium-ion Battery. Scientific Reports. 5 (2015)12571.
  • [34] J. D. Benck, Z.Chen, L. Y. Kuritzky, A .J. Forman and T. F. Jaramillo, ACSCatal. 2, 1916 (2012).
    2 , 1916 ( [2012]
  • [34] A.P. Nayak, et al. Nat.Commun. 5 (2014) 3731.
    5 ( [2014]
  • [33] J.-W. Jiang, H.S. Park, Appl. Phys. Lett. 105 (2014) 033108.
    105 ( [2014]
  • [33] Gan, Z. Xiaorong, L. Huimin, W.H. Tsz and L. Kwun et al,. ACS Applied Energy Materials. 10, 1021 (2018).
    10 , 1021 ( [2018]
  • [32] S.Z. Butler, et al. ACS Nano 7 (2013) 2898.
    7 ( [2013]
  • [31] N. Liu, et al. Fuel 119 (2014) 163.
    119 (163 . [2014]
  • [31] L.Y. Zhang, W. Junhe, Z. Xianying, Z. Bin and Guangping, Nanoscale research letters. 8, 28 (2014).
    8 , 28 [2014]
  • [30] J. Yang, H.S. Shin, J. Mater.Chem. A 2 (2014) 5979.
    A 2 ( [2014]
  • [2] W.F.Chen, K. Sasaki,C. Ma, A.I. Frenkel and N. Marinkovic et al,. AngewChem. Int. Ed. 51, 6131 (2012).
    51 , 6131 [2012]
  • [29] M.L.Chen and W.C. Oh, Nanoscale Res. Lett. 6, 398 (2011).
    6 , 398 [2011]
  • [29] M. Pumera, et al. J. Mater.Chem. A 2 (2014) 8981.
    A 2 ( [2014]
  • [28] X. Peng, et al.Chem. Soc. Rev. 43 (2014) 3303.
    43 ( [2014]
  • [28] Vattikuti, S.V. Prabhakar, Byon andChan, Journal of Nanomaterials. 10, 1155 (2015).
    10 , 1155 [2015]
  • [27]C.N.R. Rao, et al.Chem. Phys. Lett. 609 (2014) 172.
    609 ( [2014]
  • [26] X. Huang, et al. Chem. Soc. Rev. 42 (2013) 1934.
  • [25]"Tucson Fuel Cell - A Hydrogen Fuel Cell Car". Hyundai USA. Retrieved (2017)-04-05.
  • [25] P. E. Evans, H. K. Jeong, Z. Hooshmand, D. Le and T. B. Rawal et al,. J. Phys.Chem.C. 122, 10042 (2018).
    122 , 10042 [2018]
  • [25] Jeong H K, Hong L, Zhang X, Vega E, Dowben P A,Carbon 2013; 57: 227-231.
    57 : 227-231 . [2013]
  • [25] H.K. Jeong, Y.P Lee, R.J. Lahaye, M.H Park, I.J. Kim, et al., J. Am.Chem. Soc., 130 (2008)1362.
    130 ( [2008]
  • [24] T.Niyitanga and H.K. Jeong, Int. J. Hydrogen Energy. 44, 977 (2019).
    44 , 977 [2019]
  • [24] Jeong H K, Echeverria E,Chakraborti P, Le H T, Dowben P A, RSC Advances 2017; 7: 10968-10972.
    7 : 10968-10972 . [2017]
  • [23]Cheng, J. Yi and San, Electrochimica Acta. 99, 124 (2013).
    99 , 124 [2013]
  • [23] Evans P. E, Jeong H. K, Hooshmand Z, Le D, Rawal T B, Alvillar S N et al, J. Phys.Chem.C 2018; 122: 10042-10049.
    122 : 10042-10049 . [2018]
  • [21] V. Forsberg, R. Zhang, J. Bäckström,C. Dahlström, B. Andres, et al. Exfoliated MoS2 in Water without Additives, journal.pone. 11(2016) 4.
    11 ( [2016]
  • [20] P. E. Evans, H. K. Jeong, Z. Hooshmand, D. Le and T. B. Rawal et al,. Journal of PhysicalChemistryC. 122, 10042 (2018).
    122 , 10042 [2018]
  • [20] "Hydrogen Properties, Uses, Applications". Universal Industrial Gases, Inc. (2007).
  • [1] M.R. Gao, J.X. Liang, Y.R. Zheng, Y.F. Xu and J. Jiang et al,. Nat.Commun. 6, 5982 (2015).
    6 , 5982 ( [2015]
  • [1] Cavendish, Henry. "Three Papers Containing Experiments on Factitious Air, by the Hon. Henry Cavendish". Philosophical Transactions of the Royal Society. The University Press. 56: (1766)141–184
  • [19] T. Niyitanga and H. K. Jeong, Chem. Phy. Lett. 699, 8 (2018).
  • [18] Winter, M. (2007). "Hydrogen: historical information". WebElements Ltd. Archived from the original on 10 (2008).
  • [18] T. Niyitanga and H. K. Jeong, Chem. Phy. Lett.706, 266 (2018).
  • [17] Transport Action Plan: Urban Electric Mobility Initiative, United Nations, Climate Summit 2014, September 2014
  • [17] L.Chen, W. Yang, X. Liu and J. Jia, Int. J. Hydrogen Energy. 42, 12246 (2017).
    42 , 12246 [2017]
  • [16] T. Wang, L. Liu, Z. Zhu, P. Papakonstantinou and J. Hu et al,. Energy Environ Sci. 6, 625 (2013).
    6 , 625 ( [2013]
  • [15] N. Liu, L. Yang, S. Wang, Z. Zhong and S. He et al,. J. Power Sources 275 (2015) 588-94.
    275 (588-94 [2015]
  • [14] W. Hu, G. Han, F. Dai, Y. Liu and X. Shang et al,. Int. J. Hydrogen Energy. 41, 294 (2016).
    41 , 294 [2016]
  • [14] Aalund, L. R., Oil and Gas Journal, ,72(1974), 63.
    [1974]
  • [13] Y. Li, H. Wang, L. Xie, Y. Liang and G. Hong et al,. J. Am.Chem. Soc. 133, 7296 (2011).
    133 , 7296 [2011]
  • [13] Gary, J. H. and Handwerk, G. E., Petroleum Rejning Tecknology andEconomics. Marcel Dekker, New York, 131,1987
  • [12] cLaughlin, C. W., U.S. Govt. Res. Develop. Rept., 1966, 41(12), 114.
  • [12] X. Dai, K. Du, Z. Li, H. Sun and Y. Yang et al,. Int. J. Hydrogen Energy. 40, 8877 (2015).
    40 , 8877 [2015]
  • [11] M.Chhowalla, H. Shin, G. Eda, L.J. Li and K. P. Loh et al,. Nat.Chem. 5, 263 (2013).
    5 , 263 ( [2013]
  • [10] X. Lin, J. Zhou, D. Zheng,C. Guan, G. Xiao, N.Chen, Q. Liu, H. Bao, J.-Q. Wang, J. EnergyChem. 31 (2019) 125–131.
    31 ( [2019]
  • [10] Q. Yang, Y. He, Y. Fan, X.Chen, Y. Li, Int. J. Hydrogen Energy. 42, 6482 (2017).
    42 , 6482 [2017]
  • Zhao D. Reduction of graphene oxide at room temperature with vitamin C for RGO–TiO2 photoanodes in dye-sensitized solar cell Thin
    584 : 29-3 [2015]
  • Z. Graphene loading molybdenum carbide/oxide hybrids as advanced electrocatalysts for hydrogen evolution reaction
    41:21246-50 [2016]
  • Yue-Ming L. Highly efficient electrocatalytic hydrogen production by nickel promoted molybdenum sulfide microspheres catalyst
    3:21231-21236 [2013]
  • Y.Li Facile synthesis of MoS2 nanosheet-silver nanoparticles composite for surface enhanced Raman scattering and electrochemical activity
    559 ( [2013]
  • Xile H. Nanostructured hydrotreating catalysts for electrochemical evolution
    43:6555-6569 [2014]
  • Xiaoqing L. Carbon-coated molybdenum carbide nanosheets derived from molybdenum disulfide for hydrogen evolution reaction
    43:12610-12617 [2018]
  • X. Nano-tungsten carbide decorated graphene as co-catalysts for enhanced hydrogen evolution on molybdenum disulfide
    49 ( [2013]
  • X. Hydrogen evolution catalyzed by MoS3 and MoS2 particles
    6136 [2012]
  • X. Facile synthesis of low crystalline MoS2 nanosheet-coated CNTs for enhanced hydrogen evolution reaction
    5 ( [2013]
  • X. Amorphous molybdenum sulfides as hydrogen evolution catalysts
    47 , 2671-2681 [2014]
  • Well-Constructed Single-Layer Molybdenum Disulfide Nanorose Cross Linked by Three Dimensional-Reduced Graphene Oxide Network for Superior Water Splitting and Lithium Storage Property .
    6.265277778 [2015]
  • Wei D. Synthesized ultrathin MoS2 nanosheets perpendicular to graphene for catalysis of hydrogen evolution reaction
    51:1893-1896 [2015]
  • Wang C. Synthesis of MoS2-carbon composites with different morphologies and their application in hydrogen evolution reaction
    39:9638-50 [2014]
  • Visible Light-Induced Degradation of Methylene Blue in the Presence of Photocatalytic ZnS and CdS Nanoparticles
    13 , ( [2012]
  • Using hematite for photoelectrochemical water splitting : a review of current progress and challenges
    1 ( [2016]
  • Use of Graphite Oxide and Graphene Oxide as Catalysts in the Synthesis of Dipyrromethane and Calixpyrrole
    16 ( [2011]
  • Ultrathin metal-organic framework array for efficient electrocatalytic water splitting ,
    8 ( [2017]
  • Ultrathin MoS2-coated carbon nanospheres as highly efficient electrocatalyts for hydrogen evolution reaction
    40:6552-8 [2015]
  • Ultrathin MoS2 nanosheets growing within an in-situ-formed template as efficient electrocatalysts for hydrogen evolution
    275 ( [2015]
  • Ultrasmall Fe2O3 nanoparticles/MoS2 nanosheets composite as high-performance anode material for lithium ion batteries
    7 : 42772 . [2017]
  • Ullmann 's Encyclopedia of Industrial Chemistry
    [2006]
  • Two-dimensional molybdenum disulfide and tungsten disulfide interleaved nanowalls constructed on silk cocoon-derived N-doped carbon fibers for hydrogen evolution reaction
    41 ( [2016]
  • Two-dimensional layered MoS2 : rational design , properties and electrochemical applications
    0.9930555556 [2016]
  • Tribological Properties of Nanolamellar MoS2 Doped with Copper Nanoparticles
    4 ( [2014]
  • Transition metal oxide nanocatalysts for oxygen reduction reaction
    1 ( [2018]
  • Transforming Co3O4 nanosheets into porous N-doped CoxOy nanosheets with oxygen vacancies for the oxygen evolution reaction
    35 ( [2019]
  • Three-dimensional reduced graphene oxide-Mn3O4 nanosheet hybrid decorated with palladium nanoparticles for highly efficient hydrogen evolution
    43:3369-77 [2018]
  • Three-dimensional Nitrogen-Doped Graphene Supported Molybdenum Disulfide Nanoparticles as an Advanced Catalyst for Hydrogen Evolution Reaction
    5:17542 [2015]
  • Three-dimensional Nitrogen Doped Graphene Supported Molybdenum Disulfide Nanoparticles as an Advanced Catalyst for Hydrogen Evolution Reaction
    17542 [2016]
  • Thermally reduced graphite oxide/carbon nanotubes supported molybdenum disulfide as catalysts for hydrogen evolution reaction
    44 ( [2019]
  • Thermally reduced graphite oxide and molybdenum disulfide composite for enhanced hydrogen evolution reaction
    706 ( [2018]
  • The rise of two-dimensional MoS2 for catalysis .
    13 . 138118 . 10.1007/s11467-018-0812-0 [2018]
  • The future of energy supply : challenges and opportunities
    46 ( [2007]
  • The effect of varying solvents for MoS2 treatment on its catalytic efficiencies for HER and ORR
    Phys.19 (6610 [2017]
  • The effect of embedding N vacancies into g-C3N4 on the photocatalytic H2O2 production ability via H2 plasma treatment
    86 ( [2018]
  • The Scherrer formula for X-ray particle size determination
    56 ( [1939]
  • The Mysterious Island ''
    6 ( 1874 ) 722–734 .
  • The Co3O4 nanosheet array as support for MoS2 as highly efficient electrocatalysts for hydrogen evolution reaction
    35 ( [2019]
  • Template assisted synthesis of highly dispersed MoS2 nanosheets with enhanced activity for hydrogen evolution reaction
    42 ( [2017]
  • Temperature-dependent gas transport performance of vertically aligned carbon nanotube/parylene composite membranes .
    8:28 [2014]
  • Technologies for disposal of refinery residues
  • TMD-based highly efficient electrocatalysts developed by combined computational and experimental approaches
    47 , 4332-4356 [2018]
  • T. F. Catalyzing the Hydrogen Evolution Reaction ( HER ) with Molybdenum Sulfide Nanomaterials
    4 ( [2014]
  • Synthesis of multi-walled carbon nanotubes via pyrolysis of plastic waste using a two-stage process
    26 : 443-450 [2018]
  • Synthesis of Nanostructured Amorphous Molybdenum Sulfide Catalysts and Insights into the Origins of their Activity for Electrochemical Hydrogen Production
    2 ( [2012]
  • Synthesis of Nanoscale Heterostructures Comprised of Metal Nanowires , Carbon Nanotubes , and Metal Nanoparticles : Investigation of Their Structure and Electrochemical Properties
    1:13 [2015]
  • Synthesis and highly visible-induced photocatalytic activity of CNT-CdSe composite for methylene blue solution
    0.5263888889 [2011]
  • Synthesis and Structural Characterization of Al2O3 -Coated MoS2 Spheres for Photocatalysis Applications
    1.21875 [2015]
  • Synergistic Application of XPS and DFT to Investigate Metal Oxide Surface Catalysis .
    1.125694444 [2018]
  • Sumathi S. Copper-doped flower-like molybdenum disulfide/bismuth sulfide photocatalysts for enhanced solar water splitting .
    43 : 748-756 [2018]
  • Sulfur vacancy formation at different MoS2 edges during hydrodesulfurization process : A DFT study
    11 ( [2018]
  • Shahrokhian S. GrowthControl ofCobalt oxide nanoparticles on reduced graphene oxide for enhancement of electrochemicalCapacitance .
    39:21068-75 [2014]
  • Self-assembly and preshaping assisted synthesis of ultrathin nitrogen-doped graphiticCarbon lamellas supported molybdenumCarbide for hydrogen evolution reaction
    9:1588-93 [2017]
  • Science and technology roadmap for graphene , related two-dimensionalcrystals , and hybrid systems
    Nanoscale.7 (4598 [2015]
  • Schaak R. General strategy for the synthesis of transition metal phosphide films for electrocatalytic hydrogen and oxygen evolution
    8:12798-803 [2016]
  • Sagar M. Exfoliated MoS2 Sheets and Reduced Graphene Oxide-An Excellent and Fast Anode for Sodium-ion Battery
    5 : 12571 . [2015]
  • S.-H. An Efficient Molybdenum Disulfide/cobalt Diselenide HybridCatalyst for Electrochemical Hydrogen Generation
    4.404166667 [2015]
  • S. Ithurria and B. Dubertret .
    116 ( [2016]
  • RutheniumCatalysts for ammonia synthesis at high pressures : Preparation ,Characterization , and power-law kinetics ''
    151 ( [1997]
  • Reduction of Graphite Oxide by Using Atmospheric Pressure Plasma
    0.2541666667 [2016]
  • Reduction behavior of iron oxides in hydrogen andCarbon monoxide atmospheres '' .
    326 (17–27 . [2007]
  • Recent developments ofCarbon-based electrocatalysts for hydrogen evolution reaction
    28 ( [2016]
  • Recent advances in heterogeneous electrocatalysts for the hydrogen evolution reaction
    3 ( [2015]
  • Recent Advancements of Pt and Pt-freeCatalysts for Oxygen Reduction Reaction
  • R. L. Kucera and J. M.Chalker
    19 ( [2017]
  • R. Development of Solar-Powered Thermochemical Production of Hydrogen from Water
    [2007]
  • Q. Few-layer MoS2 : a promising layered semiconductor .
    8 ( [2014]
  • Pure and stable metallic phase molybdenum disulfide nanosheets for hydrogen evolution reaction
    comm.7 (10672 [2016]
  • Preparation of Monolayer MoS2 Quantum Dots using Temporally Shaped Femtosecond Laser Ablation of Bulk MoS2 Targets in Water
    7 ( [2017]
  • Platinum-BasedCatalysts on VariousCarbon Supports andConducting Polymers for Direct Methanol FuelCell Applications : A Review
    0.8263888889 [2018]
  • Photocurrent Response in MultiwalledCarbon NanotubeCore-Molybdenum Disulfide Shell Heterostructures .
    119 : 15100 . [2015]
  • Photocatalytic Water Splitting—The Untamed Dream .
    21 ( [2016]
  • One-step synthesis of cobalt-doped MoS2 nanosheets as bifunctional electrocatalysts for overall water splitting under both acidic and alkaline conditions
    54 ( [2018]
  • One-step synthesis of Ni3S2 nanowires at low temperature as efficient electrocatalyst for hydrogen evolution reaction
    42 ( [2017]
  • One-Pot Synthesis of Zeolitic Imidazolate Framework 67-Derived Hollow Co3S4 @ MoS2 Heterostructures as Efficient Bifunctional Catalysts
    29 ( [2017]
  • Novel three-dimensional flower-like porous Al2O3 nanosheets anchoring NiS2 nanoparticles for high-efficiency hydrogen evolution
    348:246-54 [2017]
  • Noble metal-coated MoS2 nanofilms with vertically-aligned 2D layers for visible light-driven photocatalytic degradation of emerging water contaminants ,
  • Ni-Doped MoS2 as an Efficient Catalyst for Electrochemical Hydrogen Evolution in Alkine Media
    3 : 9493-9498 . [2018]
  • Nanostructured nickel phosphide as an electrocatalyst for the hydrogen evolution reaction
    135:9267-70 [2013]
  • N. S. Solar water splitting cells
    110 , 6446-6473 [2010]
  • Mutually beneficial Co3O4 @ MoS2 heterostructures as a highly efficient bifunctional catalyst for electrochemical overall water splitting
    6 ( [2018]
  • Molybdenum phosphide as an efficient electrocatalyst for the hydrogen evolution reaction
    7 ( [2014]
  • Molybdenum carbide stabilized on graphene with high electrocatalytic activity for hydrogen evolution reaction
    50 ( [2014]
  • Modification of titanium dioxide by solution plasma
  • Modification of molybdenum disulfide in methanol solvent for hydrogen evolution reaction
    699 ( [2018]
  • Modeling and analysis of hybrid piezoelectric and electromagnetic energy harvesting from random vibrations .
  • MoS2 on porous graphene as catalysts for enhanced electrochemical hydrogen evolution
    121 ( [2017]
  • MoS2 nanosheets direct supported on reduced graphene oxide : An advanced electrocatalyst for hydrogen evolution reaction
    8 ( [2017]
  • MoS2 nanoparticles grown on graphene : an advanced catalyst for the hydrogen evolution reaction
    133 ( [2011]
  • MoS2 catalyst for photocatalytic hydrogen production from water
    4 ( [2016]
  • Methoxy Formation Induced Defects on MoS2 ,
    C. 122 (10042-10049 [2018]
  • Metallic MoS2 nanosheets : multifunctional electrocatalyst for the ORR , OER and LiO2 batteries
    10 ( [2018]
  • Mechanism of Hydrogen Evolution Reaction on 1T-MoS2 from First Principles ,
    6 ( [2016]
  • Mechanism for Liquid Phase Exfoliation of MoS2
    28 ( [2016]
  • M. Ionic-liquid mediated synthesis of molybdenum disulfide/graphene composites : An enhanced electrochemical hydrogen evolution
    41:28 , 12049-12061 [2016]
  • Liu X. MoS2 nanosheets direct supported on reduced graphene oxide : An advanced electrocatalyst for hydrogen evolution reaction
    8:12 [2017]
  • Liquid-Phase Exfoliation of MoS2 Nanosheets : The Critical Role of Trace Water J.
    Lett.7 (4884 [2016]
  • Light Illuminated Fe2O3/Pt Nanoparticles as Water Activation Agent for Photoelectrochemical Water Splitting
    Rep. 5 ( [2015]
  • Li J. Earth-rich transition metal phosphide for energy conversion and storage
    6:1600087 [2016]
  • Layered Transition-Metal Ditellurides in Electrocatalytic Applications— Contrasting Properties
    7 ( [2017]
  • Label-Free Fluorescence Sensing of Lead ( II ) Ions and Sulfide Ions Based on Luminescent Molybdenum Disulfide Nanosheets
    5:39 [2016]
  • L. Y. Kuritzky , A. J. Forman and T. F. Jaramillo
    [2012]
  • L. Recent progress in electrochemical hydrogen production with earth-abundant metal complexes as catalysts
    5 , 6763-6778 [2012]
  • L. Fundamental Electronic Properties and Applications of Single-Walled Carbon Nanotubes
    35 : 1018-1025 . [2002]
  • L. Changpeng and L. Jianhui et al
    55 , 9105 ( [2010]
  • Kühne H-M. Primary energy sources for hydrogen production
    18:635–40 [1993]
  • KirkOtkmer Encyclopedia of Chemical Technology
    13 , 884 [1996]
  • K. Ruban and Sellappa , Clean - Soil Air Water
    44 , 10 [2016]
  • Jorge B. Guaiacol hydrodeoxygenation reaction catalyzed by highly dispersed
    5 : 4422-4432 . [2015]
  • Jianyi L. Hydrothermal synthesis of MnO2/CNT nanocomposite with a CNT core/porous MnO2 sheath hierarchy architecture for supercapacitors
    1.330555556 [2011]
  • Jia J. Flower-like CoS2/MoS2 nanocomposite with enhanced electrocatalytic activity for hydrogen evolution reaction
    42:12246-53 [2017]
  • Jan. `` A vision on a sustainable electric society supported by Electric Vehicles ''
    [2009]
  • Insulator-metal transition in 1T′-MoS2 under uniaxial strain Physics Letters
    379 ( [2015]
  • Insights into oxygen reduction reaction ( ORR ) and oxygen evolution reaction ( OER ) active sites for nitrogen-doped carbon nanostructures ( CNx ) in acidic media , A.C. Co
    220 ( [2018]
  • In situ synthesis of MoS2/graphene nanosheets as free-standing and flexible electrode paper for high-efficiency hydrogen evolution reaction
  • Identification of active edge sites for electrochemical H2 evolution from MoS2 nanocatalysts
    317:100-2 [2007]
  • I. Molybdenum sulfides-efficient and viable materials for electro - and photoelectrocatalytic hydrogen evolution
    ,5 , 5577–5591 [2012]
  • Hydrogen production from renewable and sustainable energy resources : Promising green energy carrier for clean development
    57 ( [2016]
  • Hydrogen plasma reduction induced oxygen vacancies in cubic In2O3 particles with enhanced photocatalytic performance
    44 ( [2018]
  • Hydrogen evolution catalysts based on none noble metal nickel molybdenum nitride Nano sheets
    51:6131-5 [2012]
  • Hydrogen diffusion and vacancy clusterization in iron , Inter . J. of Hydrogen Energy
    43 ( [2018]
  • Hydrogen and oxygen evolution reactions of molybdenum disulfide synthesized by hydrothermal and plasma method
    849,113,383 [2019]
  • Hydrogen Evolution Reaction in Alkaline Media : Alpha- or Beta-Nickel Hydroxide on the Surface of Platinum ?
    3 ( [2018]
  • Hongwei Z. Two-dimensional MoS2 : Properties , preparation , and applications
    1:33-44 [2015]
  • Honda FCXClarity : Beauty for beauty 's sake ''
    [2009]
  • Highly effective and CO-tolerant PtRu electrocatalysts supported on poly ( ethyleneimine ) functionalized carbon nanotubes for direct methanol fuel cells
    99 : 124–132 . [2013]
  • Highly active spherical amorphous MoS2 : facile synthesis and application in photocatalytic degradation of rose Bengal dye and hydrogenation of nitroarenes
    5 , ( [2015]
  • Highly Active 2D Layered MoS2-rGO Hybrids for Energy Conversion and Storage Applications
    7 ( [2017]
  • High-detectivity multilayer MoS2 phototransistors with spectral response from ultraviolet to infrared
    24 , ( [2012]
  • H. T. Le and P. A. Dowben
    7 , 10968 ( [2017]
  • Growth of molybdenum carbide micro-islands on carbon cloth toward binder-free cathodes for efficient hydrogen evolution reaction
    3:16320-6 [2015]
  • Green ” path from fossil-based to hydrogen economy : an overview of carbon-neutral technologies
    33:6804–39 [2008]
  • Graphite oxide and molybdenum disulfide composite for hydrogen evolution reaction
    685:451-456 [2017]
  • Graphite oxide and molybdenum disulfide composite for hydrogen evolution reaction
  • Graphene decorated with MoS2 nanosheets : Synergetic Energy Storage composite electrode for Supercapacitor Applications
    44564.0 [2012]
  • Giulia G. Electronic Properties of MoS2 Nanoparticles
    44 : 16192-16196 . [2007]
  • Free MoS2Nanoflowers Grown on Graphene by Microwave-Assisted Synthesis as Highly Efficient Non-Noble-Metal Electrocatalysts for the Hydrogen Evolution Reaction
    11 ( [2016]
  • Flower-like MoS2 with stepped edge structure efficient for electrocatalysis of hydrogen and oxygen evolution
    01 ( 2019 ) 200 .
  • Flexible and Free‐standing PtNLs‐MoS2/Reduced Graphene Oxide Composite Paper : A High‐Performance Rolled Paper Catalyst for Hydrogen Evolution Reaction
    3 : 5941-5949 . [2018]
  • Facile synthesis of molybdenum disulfide/nitrogen-doped graphene composites for enhanced electrocatalytic hydrogen evolution and electrochemical lithium storage
    C. 107 ( [2016]
  • Facile synthesis of mesoporous WS2 for water oxidation
    09 ( [2018]
  • Facile synthesis of low crystalline MoS2 nanosheet-coated CNTs for enhanced hydrogen evolution reaction
    5 ( [2013]
  • Fabrication of graphene-based electrode in less than a minute through hybrid microwave annealing
    4 ( [2014]
  • Experiments to Determine the Density of Earth ''
  • Exfoliated MoS2 in Water without Additives ,
    27 ( [2016]
  • Evidence of Graphitic AB Stacking Order of Graphite Oxides
    130:1362 [2008]
  • Enhancing hydrogen evolution activity in water splitting by tailoring Li-Ni ( OH ) ₂-Pt
    334 ( [2011]
  • Enhanced hydrogen evolution reaction on fewelayer MoS2 nanosheetscoated functionalized carbon nanotubes .
    40:8877-88 [2015]
  • Enhanced electrocatalytic activity of water oxidation in an alkaline medium via Fe doping in CoS2 nanosheets
    1359 ( [2019]
  • Enhanced electrocatalytic activity for hydrogen evolution reaction from self-assembled monodispersed molybdenum sulfidenanoparticles on an Au electrode
    6:625-33 [2013]
  • Electronic structure and scanning-tunneling-microscopy image of molybdenum dichalcogenide surfaces
    23 : 17085–17095 . [1995]
  • Electronic modulation of transition metal phosphide viadoping as efficient and pH-universal electrocatalysts for hydrogen evolution reaction
    9 ( [2018]
  • Electronic Structure Tuning in Ni3FeN/r-GO Aerogel toward Bifunctional Electrocatalyst for Overall Water Splitting
    12:245-53 [2018]
  • Electrocatalytic oxygen evolution reaction for energy conversion and storage : A comprehensive review
    37 ( [2017]
  • Efficient hydrogen evolution electrocatalysts from Lix MoS2 nanoparticles on three-dimensional substrate
    42 ( [2017]
  • Efficient hydrogen evolution catalytic activity of graphene/metallic MoS2 nanosheet heterostructures synthesized by a one-step hydrothermal process ,
    43 ( [2018]
  • Efficient electrocatalytic and photoelectrochemical hydrogen generation using MoS2 and related compounds
    5 ( [2016]
  • Effects of vacancies at Al ( 1 1 1 ) /6H-SiC ( 0001 ) interfaces on deformation behavior : A first-principle study
    11 ( [2018]
  • Effect of pH on the growth of MoS2 ( 002 ) plane and electrocatalytic activity for HER
    41:294-9 [2016]
  • Edge-terminated molybdenum disulfide with a 9.4-Å interlayer spacing for electrochemical hydrogen production
    2015,6,7493
  • Edge-terminated molybdenum disulfide with a 9.4-Å interlayer spacing for electrochemical hydrogen production
    6 ( [2015]
  • Edge-On MoS2 Thin Films by Atomic Layer Deposition for Understanding the Interplay between the Active Area and Hydrogen Evolution Reaction
    29 ( [2017]
  • Easy incorporation of singlewalled carbon nanotubes into two-dimensional MoS2 for high-performance hydrogen evolution
    26 ( [2014]
  • Easy incorporation of single-walled carbon nanotubes into two-dimensional MoS2 for high-performance hydrogen evolution
  • E. `` New process generates hydrogen from aluminum alloy to run engines
    [2007]
  • E. Vega and P.A . Dowben
    57 , 227 [2013]
  • Development of solar-powered thermochemical production of hydrogen from water ''
    [2005]
  • Defect-rich MoS2 ultrathin nanosheets with additional active edge sites for enhanced electrocatalytic hydrogen evolution
    25 , 5807–5813 . [2013]
  • Dakhouche A. Electrodeposition and characterization of NiMoW alloy as electrode material for hydrogen evolution in alkaline water electrolysis .
    43:3394-405 [2018]
  • Dai H. MoS2 nanoparticles grown on graphene : an advanced catalyst for the hydrogen evolution reaction
    133:7296-9 [2011]
  • Cracked monolayer 1T MoS2 with abundant active sites for enhanced electrocatalytic hydrogen
    Technol.7 (718-724 [2017]
  • Control of valley polarization in monolayer MoS2 by optical helicity
    7 ( [2012]
  • Contacting MoS2 to MXene : Vanishing p-Type Schottky Barrier and Enhanced Hydrogen Evolution Catalysis ,
    C. 123 ( [2019]
  • Concurrent Hydrogen Production and Hydrogen Sulfide Decomposition by Solar Photocatalysis
    44 : 10,1002 . [2016]
  • Cobalt sulfide nanosheet/graphene/carbon nanotube nanocomposites as flexible electrodes for hydrogen evolution
    53:12594-9 [2014]
  • Clean hydrogen production in a full biological microbial electrolysis cell
    01:010 [2018]
  • Chunming W. Preparation of carbon nanotube and graphene doped polyphenylene sulfide flexible film electrodes and the electrode position of Cu2O nanocrystals for hydrogen-generation .
    0.1993055556 [2018]
  • Charge-Transfer Induced High Efficient Hydrogen Evolution of MoS2/ graphene Cocatalyst
    Rep. 5 ( [2015]
  • Catalyzing the hydrogen evolution reaction ( HER ) with molybdenum sulfide nanomaterials
    ,4 , 3957–3971 [2014]
  • Carlos D. lectrocatalytic hydrogen gas generation by cobalt molybdenum disulfide ( CoMoS2 ) synthesized using alkyl-containing thiomolybdate precursors.Int
    32 : 20669-2067 [2017]
  • Carbon-coated molybdenum carbide nanosheets derived from molybdenum disulfide for hydrogen evolution reaction
    43 ( [2018]
  • Carbon-based electrocatalysts for advanced energy conversion and storage
    1 ( [2015]
  • Carbon nanotubes-molybdenum disulfide composite for enhanced hydrogen evolution reaction
  • Carbon Nanotube Based VLSI Interconnects
    3.622916667 [2015]
  • C. M. Highly porous Ag-Ag2S/MoS2 with additional active sites synthesized by chemical etching method for enhanced electrocatalytic hydrogen evolution
    142 ( [2014]
  • C. J. Complexes of earth-abundant metals for catalytic electrochemical hydrogen generation under aqueous conditions
    42 , 2388-2400 [2013]
  • Assembly of hollow mesoporous nanoarchitectures composed of ultrafine Mo2C nanoparticles on N-doped carbon nanosheets for efficient electrocatalytic reduction of oxygen
    4 ( [2017]
  • Assembly of Hollow Carbon Nanospheres on Graphene Nanosheets and Creation of Iron–Nitrogen-Doped Porous Carbon for Oxygen Reduction ,
    12 ( [2018]
  • Arivanandhan M. Graphene decorated with MoS2 nanosheets : Synergetic Energy Storage composite electrode for Supercapacitor Applications
    44564 [2012]
  • Application of potentiostatic current integration to the study of the adsorption of cobalt ( III ) - ( Ethylenedinitrilo ( tetraacetate ) on mercury electrodes
    36 ( [1964]
  • An efficient Co3S4/CoP hybrid catalyst for electrocatalytic hydrogen evolution
    Rep,7 (11891 [2017]
  • An Attempt to Explain Some of the Principal Phaenomena of Electricity , by means of an Elastic Fluid ''
    61 ( 1771 ) : 564–677
  • Amorphous molybdenum sulfides as hydrogen evolution catalysts
    47 , 2671–2681 . [2014]
  • Advances in electrocatalysts for oxygen evolution reaction of water electrolysis-from metal oxides to carbon nanotubes
    25 ( [2015]
  • Activating Basal Planes and S-Terminated Edges of MoS2 toward More Efficient Hydrogen Evolution
    27 . 160-4943 [2016]
  • A. Junchi and Paaras
    1 , 13 [2015]
  • A p-Si/NiCoSex core/shell nanopillar array photocathode for enhanced photoelectrochemical hydrogen production ,
    9 ( [2016]
  • A molecular MoS2 edge site mimic for catalytic hydrogen generation
    335:698-702 [2012]
  • A graphene-like MoS2/graphene nanocomposite as a high performance anode for lithium ion batteries
    2 ( [2014]
  • A comparative study of Pt/C and Pt–MoOx/C catalysts with various compositions for methanol electro-oxidation
    55 : 9105-9112 . [2010]
  • A chronological history of electrical development from 600 B.C
    [1946]
  • A 3D hybrid of layered MoS2/nitrogen-doped graphene nanosheet aerogels : an effective catalyst for hydrogen evolution in microbial electrolysis cells
    2 ( [2014]
  • 2H/1T Phase Transition of Multilayer MoS2 by Electrochemical Incorporation of S vacancies .
    1.125694444 [2018]
  • 2D WS2 nanosheet supported Pt nanoparticles for enhanced hydrogen evolution reaction
    42 ( [2017]
  • 18. D.P. Volanti, A.A. Felix, M.O. Orlandi, G. Whitfield, D.-J. Yang, E. Longo, H.L.Tuller, J.A. Varela, “The role of hierarchical morphologies in the superior gas sensing performance of CuO-based chemiresistors”, Adv. Funct. Mater., 23, 1759–1766 (2013).