Facile hydrothermal synthesis of cerium aluminate (CeAlO3) and its composite with reduced graphene oxide (rGO) as an outstanding supercapacitor electrode
暂无分享,去创建一个
Haifa A. Alyousef | A. Henaish | Mohammed F. Alotiby | A. Alrowaily | B. M. Alotaibi | Tehreem Zahra | H.H. Somaily
[1] M. Alanazi,et al. Hydrothermal synthesis of Nd-doped FeTiO3 perovskite electrode for enhanced energy storage applications , 2024, Journal of Energy Storage.
[2] S. Aman,et al. Hydrothermal synthesis of the NiS@g-C3N4 nanohybrid electrode material for supercapacitor applications , 2024, Journal of Energy Storage.
[3] M. Alanazi,et al. Hydrothermally synthesized ZnSe@FeSe nanocomposite: A promising candidate for energy storage devices , 2024, International Journal of Hydrogen Energy.
[4] Qingting Liu,et al. Advances in ionogels for proton-exchange membranes. , 2024, The Science of the total environment.
[5] Fan Zhang,et al. Secondary Amines Functionalized Organocatalytic Iodine Redox for High‐Performance Aqueous Dual‐Ion Batteries , 2024, Advanced materials.
[6] S. Gouadria,et al. Facile fabrication of BiFeO3/g-C3N4 nanohybrid as efficient electrode materials for supercapacitor application , 2024, Diamond and Related Materials.
[7] Mian Zhong,et al. Hydrophobic Surface Array Structure Based on Laser-Induced Graphene for Deicing and Anti-Icing Applications , 2024, Micromachines.
[8] Haifa A. Alyousef,et al. Synthesis of high-performance supercapacitor electrode materials by hydrothermal route based on ZnSe/MnSe composite , 2024, Journal of Physics and Chemistry of Solids.
[9] M. Alanazi,et al. High-performance MoO3/g-CN supercapacitor electrode material utilizing MoO3 nanoparticles grafted on g-CN nanosheets , 2024, Diamond and Related Materials.
[10] Yongbing Tang,et al. Nonmetallic Se/N Co‐Doped Amorphous Carbon Anode Collaborates to Realize Ultra‐High Capacity and Fast Potassium Storage for Potassium Dual‐Ion Batteries , 2024, Advanced Functional Materials.
[11] Chao Guo,et al. CuCo2O4/CF cathode with bifunctional and dual reaction centers exhibits high RhB degradation in electro-Fenton systems , 2024, Journal of Electroanalytical Chemistry.
[12] M. Alanazi,et al. Fabrication of MnAl2O4/g-CN nanohybrid as an advantageous electrode for supercapacitor applications , 2024, Ceramics International.
[13] Yaonan Wang,et al. Adaptive Dynamic Surface Control With Disturbance Observers for Battery/Supercapacitor-Based Hybrid Energy Sources in Electric Vehicles , 2023, IEEE Transactions on Transportation Electrification.
[14] M. Alanazi,et al. Enhanced performance of hydrothermally prepared Ag2Se/rGO nanosheet composite for energy storage applications , 2023, Diamond and Related Materials.
[15] S. Manzoor,et al. Hydrothermal synthesis of Er2O3–NiO material for oxidation of water in alkaline media , 2023, Ceramics International.
[16] A. Wee,et al. Probing van der Waals magnetic surface and interface via circularly polarized X-rays , 2023, Applied Physics Reviews.
[17] Zulipiya Shadike,et al. Lithium-Mediated Ammonia Electrosynthesis with Ether-Based Electrolytes. , 2023, Journal of the American Chemical Society.
[18] Jiangtao Shi,et al. Metastable structures with composition fluctuation in cuprate superconducting films grown by transient liquid-phase assisted ultra-fast heteroepitaxy , 2023, Materials Today Nano.
[19] Cheng Sun,et al. An intermittent lithium deposition model based on CuMn-bimetallic MOF derivatives for composite lithium anode with ultrahigh areal capacity and current densities , 2023, Nano Research.
[20] Muhammad Imran,et al. Development of binder-free MoTe2/rGO electrode via hydrothermal route for supercapacitor application , 2023, Electrochimica Acta.
[21] Wenjie Liu,et al. Engineering an Ultrathin and Hydrophobic Composite Zinc Anode with 24 µm Thickness for High‐Performance Zn Batteries , 2023, Advanced Functional Materials.
[22] Xiaobo Ji,et al. Metallic Particles‐Induced Surface Reconstruction Enabling Highly Durable Zinc Metal Anode , 2023, Advanced Functional Materials.
[23] K. Jabbour,et al. Effect on physiochemical assets of Dy added spinel ZnSm2O4 for energy storage applications , 2023, Ceramics International.
[24] X. Wang,et al. Enhanced Energy Storage Performance of Polyethersulfone-Based Dielectric Composite via Regulating Heat Treatment and Filling Phase , 2023, Journal of Alloys and Compounds.
[25] Xiaobo Ji,et al. In Situ Construction of Anode–Molecule Interface via Lone‐Pair Electrons in Trace Organic Molecules Additives to Achieve Stable Zinc Metal Anodes , 2023, Advanced Energy Materials.
[26] S. Manzoor,et al. A novel porous rod with nanosphere CuS_2/NiFe_2O_4 nanocomposite for low-cost high-performance energy storage system , 2023, Journal of Materials Science: Materials in Electronics.
[27] N. Zhao,et al. Design of Solid Electrolytes with Fast Ion Transport: Computation-driven and Practical Approaches , 2023, Energy Material Advances.
[28] K. Hou,et al. Effect of radical scavenger on electrical tree in cross‐linked polyethylene with large harmonic superimposed DC voltage , 2022, High Voltage.
[29] Ahmed M. Shawky,et al. Ag2Se/SnTe nanorod as potential candidate for energy conversion system developed via hydrothermal route , 2022, Ceramics International.
[30] Ahmed M. Shawky,et al. Facile synthesis of CoCo2O4/rGO spinel nanoarray as a robust electrode for energy storage devices , 2022, Inorganic Chemistry Communications.
[31] Shuye Zhang,et al. Molecular Level Manipulation of Charge Density for Solid-liquid TENG System by Proton Irradiation , 2022, Nano Energy.
[32] S. Polaki,et al. Molybdenum sulfo-selenides grown on surface engineered vertically aligned graphitic petal arrays for solid-state supercapacitors , 2022, Journal of Energy Storage.
[33] M. Ashiq,et al. Development of CuO/CuS/MnO2 ternary nanocomposite for visible light-induced photocatalytic degradation of methylene blue , 2022, Nanotechnology for Environmental Engineering.
[34] Linghui Yu,et al. Trajectory-Battery Integrated Design and Its Application to Orbital Maneuvers with Electric Pump-Fed Engines , 2022, Advances in Space Research.
[35] J. Qi,et al. Synthesis and characterization of CeAlO3 via solid state method , 2022, Journal of Solid State Chemistry.
[36] Ashavani Kumar,et al. Engineered perovskite LaCoO3/rGO nanocomposites for asymmetrical electrochemical supercapacitor application , 2022, Journal of Materials Science: Materials in Electronics.
[37] K. Chattopadhyay,et al. Electrochemical Performance of 3D Network CsPbBr3 Perovskite Anodes for Li-Ion Batteries: Experimental Venture with Theoretical Expedition , 2021, The Journal of Physical Chemistry C.
[38] A. Beskrovnyi,et al. Structure Investigation by Neutron Diffraction and X‐Ray Diffraction of Graphene Nanocomposite CuO–rGO Prepared by Low‐Cost Method , 2021, physica status solidi (a).
[39] P. Lokhande,et al. Nickel hydroxide nanosheets grown on nickel foam for high performance supercapacitor applications , 2021, Materials Technology.
[40] Saied Saeed Hosseiny Davarani,et al. Construction of complex copper-cobalt selenide hollow structures as an attractive battery-type electrode material for hybrid supercapacitors , 2020 .
[41] Jiaguo Yu,et al. Synthesis of reduced graphene oxide supported nickel-cobalt-layered double hydroxide nanosheets for supercapacitors. , 2020, Journal of colloid and interface science.
[42] A. Imran,et al. Core-Shell FeSe2 /C Nanostructures Embedded in a Carbon Framework as a Free Standing Anode for a Sodium Ion Battery. , 2020, Small.
[43] Anil Kumar Yedluri,et al. Hierarchical NiCo2S4 nanostructure as highly efficient electrode material for high-performance supercapacitor applications , 2020 .
[44] Yongbing Tang,et al. Molecular grafting towards high-fraction active nanodots implanted in N-doped carbon for sodium dual-ion batteries , 2020, National science review.
[45] Shen Chen,et al. Developing Low-Cost, High Performance, Robust and Sustainable Perovskite Electrocatalytic Materials in the Electrochemical Sensors and Energy Sectors: “An Overview” , 2020, Catalysts.
[46] Y. Liu,et al. In-situ growth of interconnected NiS2/MoS2 nanowires supported on Ni foam as binder-free electrode for hybrid supercapacitor , 2020 .
[47] R. Jayavel,et al. Facile synthesis of pervoskite type BiYO3 embedded reduced graphene oxide (RGO) composite for supercapacitor applications , 2020 .
[48] H. B. Muralidhara,et al. Facile synthesis of perovskite lanthanum aluminate and its green reduced graphene oxide composite for high performance supercapacitors , 2020 .
[49] Mingrui Wei,et al. Facile Synthesis of LaCoO3 with a High Oxygen Vacancy Concentration by the Plasma Etching Technique for High-Performance Oxygen Ion Intercalation Pseudocapacitors , 2020 .
[50] Y. Gogotsi,et al. Organic-inorganic all-pseudocapacitive asymmetric energy storage devices , 2019, Nano Energy.
[51] Hao He,et al. An asymmetric supercapacitor using sandwich-like NiS/NiTe/Ni positive electrode exhibits a super-long cycle life exceeding 200 000 cycles , 2019, Journal of Power Sources.
[52] Bin Yue,et al. Facile Synthesis and Electrochemical Properties of Perovskite‐type CeMnO 3 Nanofibers , 2019, ChemistrySelect.
[53] Yaping Du,et al. Rare earth double perovskites: a fertile soil in the field of perovskite oxides , 2019, Inorganic Chemistry Frontiers.
[54] M. Kumar,et al. Enhanced electrochemical studies of ZnO/CNT nanocomposite for supercapacitor devices , 2019, Physica B: Condensed Matter.
[55] R. E. Schaak,et al. Tutorial on Powder X-ray Diffraction for Characterizing Nanoscale Materials. , 2019, ACS nano.
[56] Mingjia Zhi,et al. Shape‐Dependent Electrocatalytic Activity of Carbon Reinforced Ni 2 P Hybrids Toward Urea Electrocatalysis , 2019, Energy Technology.
[57] K. B. Babu Naidu,et al. Microwave heated lead cobalt titanate nanoparticles synthesized by sol-gel technique: Structural, morphological, dielectric, impedance and ferroelectric properties , 2019, Materials Science and Engineering: B.
[58] Subramani Kaipannan,et al. Fabrication of 9.6 V High-performance Asymmetric Supercapacitors Stack Based on Nickel Hexacyanoferrate-derived Ni(OH)2 Nanosheets and Bio-derived Activated Carbon , 2019, Scientific Reports.
[59] Y. Soneda,et al. Void-bearing electrodes with microporous activated carbon for electric double-layer capacitors , 2019, Journal of Electroanalytical Chemistry.
[60] M. Raghu,et al. Ruthenium oxide nanostring clusters anchored Graphene oxide nanocomposites for high-performance supercapacitors application , 2018, Materials Research Bulletin.
[61] N. S. Kumar,et al. Sol-gel synthesized and microwave heated Pb0.8-yLayCo0.2TiO3 (y = 0.2–0.8) nanoparticles: Structural, morphological and dielectric properties , 2018, Ceramics International.
[62] William G. Hardin,et al. Exceptional electrocatalytic oxygen evolution via tunable charge transfer interactions in La0.5Sr1.5Ni1−xFexO4±δ Ruddlesden-Popper oxides , 2018, Nature Communications.
[63] Tadeusz Pustelny,et al. Characterization of Graphite Oxide and Reduced Graphene Oxide Obtained from Different Graphite Precursors and Oxidized by Different Methods Using Raman Spectroscopy , 2018, Materials.
[64] E. Kymakis,et al. Perovskite nanostructures for photovoltaic and energy storage devices , 2018 .
[65] M. Prashanth,et al. Simple fabrication of reduced graphene oxide -few layer MoS 2 nanocomposite for enhanced electrochemical performance in supercapacitors and water purification , 2018 .
[66] Yufeng Zhao,et al. Interface-rich core-shell ammonium nickel cobalt phosphate for high-performance aqueous hybrid energy storage device without a depressed power density , 2018 .
[67] Husam N. Alshareef,et al. All Pseudocapacitive MXene‐RuO2 Asymmetric Supercapacitors , 2018 .
[68] Hui‐Ming Cheng,et al. Reversible calcium alloying enables a practical room-temperature rechargeable calcium-ion battery with a high discharge voltage , 2018, Nature Chemistry.
[69] Byung Hoon Kim,et al. Freeze-dried MoS2 sponge electrodes for enhanced electrochemical energy storage. , 2017, Dalton transactions.
[70] Di Zhang,et al. Facile Self-Cross-Linking Synthesis of 3D Nanoporous Co3O4/Carbon Hybrid Electrode Materials for Supercapacitors. , 2016, ACS applied materials & interfaces.
[71] Chun‐Sing Lee,et al. Dual‐Ion Batteries: A Novel Aluminum–Graphite Dual‐Ion Battery (Adv. Energy Mater. 11/2016) , 2016 .
[72] Xiaoguang Li,et al. 3D graphene/ZnO nanorods composite networks as supercapacitor electrodes , 2015 .
[73] R. Jayavel,et al. Synthesis of graphene oxide/vanadium pentoxide composite nanofibers by electrospinning for supercapacitor applications , 2014 .
[74] Yu-Jun Zhao,et al. Tuning p/n conductivity in wurtzite transition metal monoxide: Role of native defects in CoO and MnO , 2014 .
[75] William G. Hardin,et al. Anion charge storage through oxygen intercalation in LaMnO3 perovskite pseudocapacitor electrodes. , 2014, Nature materials.
[76] Yury Gogotsi,et al. Materials science: Energy storage wrapped up , 2014, Nature.
[77] F. Gobal,et al. Electrodeposited polyaniline on Pd-loaded TiO2 nanotubes as active material for electrochemical supercapacitor , 2013 .
[78] Zhanwei Xu,et al. Electrochemical Supercapacitor Electrodes from Sponge-like Graphene Nanoarchitectures with Ultrahigh Power Density. , 2012, The journal of physical chemistry letters.
[79] N. Gibson,et al. The Scherrer equation versus the 'Debye-Scherrer equation'. , 2011, Nature nanotechnology.
[80] B. Jang,et al. Graphene-based supercapacitor with an ultrahigh energy density. , 2010, Nano letters.
[81] Hongwei Ma,et al. Facile synthesis and application of Ag-chemically converted graphene nanocomposite , 2010 .
[82] F. Wei,et al. Preparation of a graphene nanosheet/polyaniline composite with high specific capacitance , 2010 .
[83] S. Aftab,et al. Dimensional Diversity (0D, 1D, 2D, 3D) in Perovskite Solar Cells: Exploring the Potential of Mix-dimensional Integrations , 2024, Journal of Materials Chemistry A.
[84] Yongquan Zhang,et al. PEO/Li1.25Al0.25Zr1.75(PO4)3 composite solid electrolytes for high-rate and ultra-stable all-solid-state lithium metal batteries with impregnated cathode modification , 2024, Inorganic Chemistry Frontiers.
[85] W. Meevasana,et al. Activated Carbon-MnO2 Composite on Nickel Foam as Supercapacitors Electrode in Organic Electrolyte , 2023, E3S Web of Conferences.
[86] Rong Shao,et al. FeSe and Fe3Se4 encapsulated in mesoporous carbon for flexible solid-state supercapacitor , 2022, Chemical Engineering Journal.
[87] N. Kim,et al. 0D to 3D carbon-based networks combined with pseudocapacitive electrode material for high energy density supercapacitor: A review , 2021 .
[88] Lixian Sun,et al. Simple synthesis of core-shell structure of Co–Co 3 O 4 @ carbon-nanotube-incorporated nitrogen-doped carbon for high-performance supercapacitor , 2018 .
[89] S. Manzoor,et al. Facile synthesis of CuAl2O4/rGO nanocomposite via the hydrothermal method for supercapacitor applications , 2022, Fuel.