| Literature DB >> 32244456 |
Tahir Rasheed1, Komal Rizwan2, Muhammad Bilal3, Hafiz M N Iqbal4.
Abstract
Metal-organic frameworks (Entities:
Keywords: biomedical applications; metal-organic frameworks; porous materials; reaction coordination
Mesh:
Substances:
Year: 2020 PMID: 32244456 PMCID: PMC7180910 DOI: 10.3390/molecules25071598
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1A schematic overview of MOF synthesis, properties, and applications. Reprinted from Bilal et al. [14] an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). Copyright (2018) Brazilian Metallurgical, Materials and Mining Association. Published by Elsevier Editora Ltda.
Figure 2Scheme for the preparation of a MOF. Different metal ions or clusters are mixed with organic linkers using a suitable solvent. Coordination polymerization takes place between the precursors, resulting in a cross-linked network showing potential voids. Reprinted from Carrasco [17] an open-access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). Copyright (2018), the author. Licensee MDPI, Basel, Switzerland.
Figure 3Schematic presentation of (a) NENU-500 (b) NENU-501 (c) LSV curves (d) Tafel plots of corresponding electrodes and other related materials in 0.5 M H2SO4. Reprinted from Qin et al. [58] with permission from the American Chemical Society. Copyright (2015), the American Chemical Society.
Figure 4(a) Schematic illustration of NU-1000. (b) Ni–S Electrodeposition for the formation of the NU-1000/Ni–S hybrid (c) LSV curves (d) Tafel plots of NU-1000/Ni–S composite and related materials. Reprinted from Hod et al. [64] an open-access article licensed under a Creative Commons Attribution 4.0 International License http://creativecommons.org/licenses/by/4.0/, and (e) Presentation of the synthesis of the Zr-MOF stabilized MoSx. Reprinted from Dai et al. [66] with permission from the American Chemical Society. Copyright (2016) the American Chemical Society.
Figure 5(a) Presentation of coordination structure of UTSA-16 (b) In 1.0 M KOH solution LSV plots of electrodes modified by UTSA-16, RuO2, Co3O4, and related materials. Reprinted from Jiang et al. [76] with permission from the American Chemical Society. Copyright (2017), the American Chemical Society.
Figure 6(a) Schematic illustration of the preparation of hollow MxCo3-xS4 for photocatalytic hydrogen production. Reprinted from Huang et al. [96] with permission from the American Chemical Society. Copyright (2016) the American Chemical Society (b) Schematic illustration of the fabrication of Pt–ZnO–Co3O4, Pt–ZnS–CoS and Pt–Zn3P2–CoP photocatalysts (c) The comparison of photocatalytic performance of Pt–ZnO–Co3O4, Pt–ZnS–CoS and Pt–Zn3P2–CoP. Reprinted from Lan et al. [97] with permission from Elsevier. Copyright (2017) Elsevier Ltd.
Figure 7Synthesis of long-lasting NIR persistent luminescent MOF (PLNPs@ZIF-8) for acid-activated Tumor imaging and drug release. Reprinted from Zhao et al. [120] with permission from Elsevier. Copyright (2019) Elsevier Ltd.
Figure 8Representation of two-dimensional Cu(bpy)2(OTf)2 metal-organic framework nanosheets for fluorescent detection for H2O2 and glucose. Reprinted from Shi et al. [123] with permission from Elsevier. Copyright (2019) Elsevier B.V.
Figure 9Schematic illustration of the synthesis method of PtNPs/Cu-TCPP(Fe) hybrid nanosheets and its application in colorimetric detection of H2O2 and glucose. Reprinted from Chen et al. [2] with permission from the American Chemical Society. Copyright (2018) the American Chemical Society.