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PUBMED FOR HANDHELDS

Journal Abstract Search


114 related items for PubMed ID: 37358333

  • 1.
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  • 2. Nanomaterial with Core-Shell Structure Composed of {P2W18O62} and Cobalt Homobenzotrizoate for Supercapacitors and H2O2-Sensing Applications.
    Zhang L, Di S, Lin H, Wang C, Yu K, Lv J, Wang C, Zhou B.
    Nanomaterials (Basel); 2023 Mar 25; 13(7):. PubMed ID: 37049271
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  • 4. A hybrid borotungstate-coated metal-organic framework with supercapacitance, photocatalytic dye degradation and H2O2 sensing properties.
    Yu L, Ning K, Chunmei W, Kai Y, Jinghua L, Chunxiao W, Baibin Z.
    Dalton Trans; 2022 May 17; 51(19):7613-7621. PubMed ID: 35510526
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  • 6. A Facile Grinding Method for the Synthesis of 3D Ag Metal-Organic Frameworks (MOFs) Containing Ag6 Mo7 O24 for High-Performance Supercapacitors.
    Zhao X, Gong L, Wang C, Wang C, Yu K, Zhou B.
    Chemistry; 2020 Apr 06; 26(20):4613-4619. PubMed ID: 32039508
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  • 7. Polyoxometalates-Based Metal-Organic Frameworks Made by Electrodeposition and Carbonization Methods as Cathodes and Anodes for Asymmetric Supercapacitors.
    Liu YZ, Yao W, Gan HM, Sun CY, Su ZM, Wang XL.
    Chemistry; 2019 Dec 20; 25(72):16617-16624. PubMed ID: 31631411
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  • 8. Hemin-doped metal-organic frameworks based nanozyme electrochemical sensor with high stability and sensitivity for dopamine detection.
    Kang K, Wang B, Ji X, Liu Y, Zhao W, Du Y, Guo Z, Ren J.
    RSC Adv; 2021 Jan 06; 11(4):2446-2452. PubMed ID: 35424163
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  • 9. Vanadate-based Fe-MOFs as promising negative electrode for hybrid supercapacitor device.
    Wang Y, Lu W, Wang L, Li Y, Wu H, Zhu X, Zhang C, Wang K.
    Nanotechnology; 2024 Feb 29; 35(20):. PubMed ID: 38198714
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  • 11. In Situ Growth of Metal-Organic Framework HKUST-1 on Graphene Oxide Nanoribbons with High Electrochemical Sensing Performance in Imatinib Determination.
    Rezvani Jalal N, Madrakian T, Afkhami A, Ghoorchian A.
    ACS Appl Mater Interfaces; 2020 Jan 29; 12(4):4859-4869. PubMed ID: 31908170
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  • 12. Mo-Based crystal POMOFs with a high electrochemical capacitor performance.
    Chai D, Xin J, Li B, Pang H, Ma H, Li K, Xiao B, Wang X, Tan L.
    Dalton Trans; 2019 Sep 14; 48(34):13026-13033. PubMed ID: 31403634
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  • 13. Four polyoxomolybdated-based 3D compounds as supercapacitors and amperometric sensors.
    Hui K, Liu T, Yang ML, Tian AX, Ying J.
    Mikrochim Acta; 2024 Jun 20; 191(7):410. PubMed ID: 38900272
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  • 14.
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  • 15. Polyoxometalate Metal-Organic Frameworks: Keggin Clusters Encapsulated into Silver-Triazole Nanocages and Open Frameworks with Supercapacitor Performance.
    Hou Y, Pang H, Gómez-García CJ, Ma H, Wang X, Tan L.
    Inorg Chem; 2019 Dec 02; 58(23):16028-16039. PubMed ID: 31738057
    [Abstract] [Full Text] [Related]

  • 16. Structure-Designed Synthesis of CoP Microcubes from Metal-Organic Frameworks with Enhanced Supercapacitor Properties.
    Wang W, Zhang L, Xu G, Song H, Yang L, Zhang C, Xu J, Jia D.
    Inorg Chem; 2018 Aug 20; 57(16):10287-10294. PubMed ID: 30088762
    [Abstract] [Full Text] [Related]

  • 17. Construction of hierarchical Co9S8@NiO synergistic microstructure for high-performance asymmetric supercapacitor.
    Wang J, Huang Y, Han X, Zhang S, Wang M, Yan J, Chen C, Zong M.
    J Colloid Interface Sci; 2021 Dec 20; 603():440-449. PubMed ID: 34197992
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  • 18. Facile synthesis of PEDOT-rGO/HKUST-1 for high performance symmetrical supercapacitor device.
    Mohanadas D, Mohd Abdah MAA, Azman NHN, Ravoof TBSA, Sulaiman Y.
    Sci Rep; 2021 Jun 03; 11(1):11747. PubMed ID: 34083589
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  • 19. Polypyrrole decorated metal-organic frameworks for supercapacitor devices.
    Patterson N, Xiao B, Ignaszak A.
    RSC Adv; 2020 May 26; 10(34):20162-20172. PubMed ID: 35520395
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  • 20. Nickel and cobalt metal-organic-frameworks-derived hollow microspheres porous carbon assembled from nanorods and nanospheres for outstanding supercapacitors.
    Zhou P, Wan J, Wang X, Xu K, Gong Y, Chen L.
    J Colloid Interface Sci; 2020 Sep 01; 575():96-107. PubMed ID: 32361050
    [Abstract] [Full Text] [Related]


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