Fabrication of MnAl2O4/g-CN nanohybrid as an advantageous electrode for supercapacitor applications
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M. Alanazi | S. Aman | Hafiz Muhammad Tahir Farid | ShaimaaA.M. Abdelmohsen | A. Henaish | Saeed D. Alahmari | Muhammad Abdullah | Zubair Ahmad | Tehreem Zahra | A. Dahshan
[1] S. Sudhahar,et al. Influence of annealing on the morphological, structural and electrochemical properties of Co3O4 spinel electrodes , 2023, Journal of Energy Storage.
[2] Xiang Ren,et al. Flower-like ZnCo2O4 microstructures with large specific surface area serve as battery-type cathode for high-performance supercapacitors , 2023, Journal of Energy Storage.
[3] M. Z. Ansari,et al. Fabrication of novel zinc selenide/cadmium oxide nanohybrid electrode via hydrothermal route for energy storage application , 2023, Journal of Energy Storage.
[4] K. Yu,et al. Improved supercapacitors and water splitting performances of Anderson-type manganese(III)-polyoxomolybdate through assembly with Zn-MOF in a host-guest structure. , 2023, Journal of colloid and interface science.
[5] K. Jabbour,et al. Effect on physiochemical assets of Dy added spinel ZnSm2O4 for energy storage applications , 2023, Ceramics International.
[6] K. Jabbour,et al. Iron doped Gd2Zr2O7 hierarchical nanoflakes arrays as robust electrodes materials for energy storage application , 2023, Journal of Energy Storage.
[7] S. Manzoor,et al. Partial sulfur doping induced variation in morphology of MnFe_2O_4 with enhanced electrochemical performance for energy storage devices , 2023, Korean Journal of Chemical Engineering.
[8] A. Al‐Sehemi,et al. CeSe nanocube anchored on the nanosheet of reduced graphene oxide (rGO) as a binder free electrode for energy conversion system , 2023, Journal of the Korean Ceramic Society.
[9] S. Nehra,et al. Synthesizing GCN–xAg Composites and Studying Their Role as Electrochemical Pseudo-Supercapacitor Electrode , 2023, Russian Journal of Electrochemistry.
[10] Xiang Ren,et al. Advanced Hybrid Supercapacitors Assembled With Beta-Co(OH)2 Microflowers and Microclews as High-performance Cathode Materials , 2023, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[11] K. Jabbour,et al. Uniformly dispersed flowery EuZrSe3 derived from the europium-based metal–organic framework for energy storage devices , 2023, Fuel.
[12] 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.
[13] S. Manzoor,et al. Nanospheres type Morphology for regulating the electrochemical property of CeO_2 nanostructures for energy storage system , 2023, Journal of Sol-Gel Science and Technology.
[14] N. Alwadai,et al. Effect of Ag Content on the Electrochemical Performance of Ag2Te Nanostructures Synthesized by Hydrothermal Route for Supercapacitor Applications , 2023, Energy & Fuels.
[15] Xiang Ren,et al. Advanced hybrid supercapacitors assembled with high-performance porous MnCo2O4.5 nanosheets as battery-type cathode materials , 2023, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[16] Ahmed M. Shawky,et al. Ag2Se/SnTe nanorod as potential candidate for energy conversion system developed via hydrothermal route , 2022, Ceramics International.
[17] Ahmed M. Shawky,et al. Facile synthesis of CoCo2O4/rGO spinel nanoarray as a robust electrode for energy storage devices , 2022, Inorganic Chemistry Communications.
[18] Xiang Ren,et al. Facile preparation of SnS2 nanoflowers and nanoplates for the application of high-performance hybrid supercapacitors , 2022, International Journal of Hydrogen Energy.
[19] S. Khasim. Synthesis of g-C3N4/CuO Nanocomposite as a Supercapacitor with Improved Electrochemical Performance for Energy Storage applications , 2022, International Journal of Electrochemical Science.
[20] Huiyu Chen,et al. Nanosheet-assembled porous MnCo2O4.5 microflowers as electrode material for hybrid supercapacitors and lithium-ion batteries. , 2022, Journal of colloid and interface science.
[21] Hee-jee Kim,et al. Fabrication of High-Performance Asymmetric Supercapacitor Consists of Nickel Oxide and Activated Carbon (NiO//AC) , 2022, Catalysts.
[22] Xiang Wang,et al. Capped Keggin Type Polyoxometalate-Based Inorganic-Organic Hybrids Involving In Situ Ligand Transformation as Supercapacitors and Efficient Electrochemical Sensors for Detecting Cr(VI). , 2021, Inorganic chemistry.
[23] E. Mijowska,et al. Influence of Hydrogenation on Morphology, Chemical Structure and Photocatalytic Efficiency of Graphitic Carbon Nitride , 2021, International journal of molecular sciences.
[24] Yan Liu,et al. Optimizing Fe2O3-based supercapacitor cathode with tunable surface pseudocapacitance via facile in situ vulcanization process , 2021, Journal of Electroanalytical Chemistry.
[25] R. Suresh Babu,et al. Facile synthesis of transition metal (M = Cu, Co) oxide grafted graphitic carbon nitride nanosheets for high performance asymmetric supercapacitors , 2021, Materials Letters.
[26] N. K. Sahu,et al. Electrochemical supercapacitor application of CoFe2O4 nanoparticles decorated over graphitic carbon nitride , 2021, Diamond and Related Materials.
[27] Nageh K. Allam,et al. Highly Stable Supercapacitor Devices Based on Three-Dimensional Bioderived Carbon Encapsulated g-C3N4 Nanosheets , 2021 .
[28] Yongsong Luo,et al. Hierarchical crumpled NiMn2O4@MXene composites for high rate ion transport electrochemical supercapacitors. , 2021, Dalton transactions.
[29] S. Meher,et al. 3D-heterostructured NiO nanofibers/ultrathin g-C3N4 holey nanosheets: An advanced electrode material for all-solid-state asymmetric supercapacitors with multi-fold enhanced energy density , 2020 .
[30] J. Xavier. High protection performance of vanadium pentoxide-embedded polyfuran/epoxy coatings on mild steel , 2020, Polymer Bulletin.
[31] M. Askari,et al. Binary nickel ferrite oxide (NiFe2O4) nanoparticles coated on reduced graphene oxide as stable and high-performance asymmetric supercapacitor electrode material , 2020 .
[32] N. Tu,et al. Carbon-encapsulated MnFe2O4 nanoparticles: effects of carbon on structure, magnetic properties and Cr(VI) removal efficiency , 2020, Applied Physics A.
[33] N. R. Khalid,et al. Role of cerium-doping in CoFe2O4 electrodes for high performance supercapacitors , 2020 .
[34] A. Rehman,et al. CoFe2O4 Nanoparticle-Decorated 2D MXene: A Novel Hybrid Material for Supercapacitor Applications , 2020 .
[35] T. Maiyalagan,et al. Rational design of ZnFe2O4/g-C3N4 nanocomposite for enhanced photo-Fenton reaction and supercapacitor performance , 2019 .
[36] Cheng Hu,et al. Facile synthesis of pseudocapacitive Mn3O4 nanoparticles for high-performance supercapacitor , 2019, Ceramics International.
[37] B. Rezaei,et al. Graphitic carbon nitride nanosheets coated with Ni2CoS4 nanoparticles as a high-rate electrode material for supercapacitor application , 2019, Ceramics International.
[38] Xuefeng Wei,et al. Effect of amorphous alumina and α-alumina on optical, color, fluorescence properties and photocatalytic activity of the MnAl2O4 spinel oxides , 2019, Optik.
[39] Shasha Zheng,et al. Graphitic carbon nitride based materials for electrochemical energy storage , 2019, Journal of Materials Chemistry A.
[40] Hai-Ning Wang,et al. Polyoxometalate-Based Metal-Organic Frameworks with Conductive Polypyrrole for Supercapacitors. , 2018, ACS applied materials & interfaces.
[41] Qun Wang,et al. Synthesis of porous graphitic carbon from biomass by one-step method And its role in the electrode for supercapacitor , 2018, Journal of Applied Electrochemistry.
[42] Xinjuan Liu,et al. In situ structural modification of graphitic carbon nitride by alkali halides and influence on photocatalytic activity , 2017 .
[43] P. P. Lottici,et al. Raman fingerprint of chromate, aluminate and ferrite spinels , 2015 .
[44] Y. Yamauchi,et al. Porous nanoarchitectures of spinel-type transition metal oxides for electrochemical energy storage systems. , 2015, Physical chemistry chemical physics : PCCP.
[45] Dan Sun,et al. Strongly coupled graphene/Mn3O4 composite with enhanced electrochemical performance for supercapacitor electrode , 2015 .
[46] Y. Hayakawa,et al. Facile synthesis of graphene-CeO2 nanocomposites with enhanced electrochemical properties for supercapacitors. , 2015, Dalton transactions.
[47] Ski,et al. Three electrode configuration measurements of electrolyte-diffusion barrier-cathode interface , 2015 .
[48] B. K. Gupta,et al. Ultrathin porous hierarchically textured NiCo2O4–graphene oxide flexible nanosheets for high-performance supercapacitors , 2015 .
[49] Jianfeng Chen,et al. Ultrasound–Microwave-Assisted Synthesis of MnO2 Supercapacitor Electrode Materials , 2014 .
[50] Xiaobo Ji,et al. NiCo2O4-based materials for electrochemical supercapacitors , 2014 .
[51] Yu-Jun Zhao,et al. Tuning p/n conductivity in wurtzite transition metal monoxide: Role of native defects in CoO and MnO , 2014 .
[52] Yury Gogotsi,et al. Materials science: Energy storage wrapped up , 2014, Nature.
[53] Boyang Liu,et al. New energy storage option: toward ZnCo2O4 nanorods/nickel foam architectures for high-performance supercapacitors. , 2013, ACS applied materials & interfaces.
[54] M. Rincón,et al. Electrochemical supercapacitors based on novel hybrid materials made of carbon nanotubes and polyoxometalates , 2007 .
[55] Xiaochen Dong,et al. Binary metal oxide: advanced energy storage materials in supercapacitors , 2015 .