Persistent Luminescent Nanoparticle-Coated Metal–Organic Frameworks for Round-the-Clock Photocatalytic Degradation of Pollutants
暂无分享,去创建一个
[1] Yanping Liu,et al. A novel organic/inorganic S-scheme heterostructure of TCPP/Bi12O17Cl2 for boosting photodegradation of tetracycline hydrochloride: Kinetic, degradation mechanism, and toxic assessment , 2023, Applied Surface Science.
[2] Abdukader Abdukayum,et al. Enhanced photocatalytic activity of a flower-like In2O3/ZnGa2O4:Cr heterojunction composite with long persisting luminescence , 2022, RSC advances.
[3] Wei Zhao,et al. S-Scheme MIL-101(Fe) octahedrons modified Bi2WO6 microspheres for photocatalytic decontamination of Cr(VI) and tetracycline hydrochloride: Synergistic insights, reaction pathways, and toxicity analysis , 2022, Chemical Engineering Journal.
[4] R. Dewil,et al. Photo-assisted (waste)water treatment technologies — A scientometric-based critical review , 2022, Desalination.
[5] S. Tangestaninejad,et al. Synthesis and characterization of Bi2MoO6/MIL-101(Fe) as a novel composite with enhanced photocatalytic performance: Effect of water matrix and reaction mechanism , 2022, Advanced Powder Technology.
[6] Jun Wang,et al. Novel Z-scheme Sr2MgSi2O7:Eu2+,Dy3+/Ag3PO4 photocatalyst for round-the-clock efficient degradation of organic pollutants and hydrogen production , 2022, Chemical Engineering Journal.
[7] He-Fang Wang,et al. Afterglow-Catalysis and Molecular Imprinting: A Promising Union for Elevating Selectivity in Degradation of Antibiotics , 2021, Applied Catalysis B: Environmental.
[8] Y. Tachibana,et al. Developing sustainable, high-performance perovskites in photocatalysis: design strategies and applications. , 2021, Chemical Society reviews.
[9] Junqing Hu,et al. In situ construction of heterostructured bimetallic sulfide/phosphide with rich interfaces for high-performance aqueous Zn-ion batteries , 2021, Science China Materials.
[10] N. Mahmoodi,et al. Synthesis of iron based-metal-organic framework nanocomposite and visible light pollutant degradation ability , 2021, Materials Research Bulletin.
[11] M. Baghdadi,et al. Application of sand particles modified with NH2-MIL-101(Fe) as an efficient visible-light photocatalyst for Cr(VI) reduction. , 2020, Chemosphere.
[12] Shengqian Ma,et al. Atomic layer deposition of Cu2O on NH2-MIL-101(Fe) for enhanced photocatalytic performance and decreased electron/hole recombination , 2020 .
[13] M. Sillanpää,et al. MIL-101(Fe)/g-C3N4 for enhanced visible-light-driven photocatalysis toward simultaneous reduction of Cr(VI) and oxidation of bisphenol A in aqueous media , 2020 .
[14] Jide Wang,et al. Magnetic Fe3O4-encapsulated VAN@MIL-101(Fe) with mixed-valence sites and mesoporous structures as efficient bifunctional water splitting photocatalysts. , 2020, Nanoscale.
[15] C. Fan,et al. Fe-based MOFs for photocatalytic N2 reduction: Key role of transition metal iron in nitrogen activation , 2020 .
[16] Yan Xia,et al. Two-in-one ultraviolet persistent luminescent catalyst suitable for high concentration photodegradation. , 2020, The Science of the total environment.
[17] Xiaoyu Xie,et al. Self-limiting synthesis of Au–Pd core–shell nanocrystals with a near surface alloy and monolayer Pd shell structure and their superior catalytic activity on the conversion of hexavalent chromium , 2019, Applied Catalysis B: Environmental.
[18] Jun Lin,et al. A g-C3N4@Au@SrAl2O4:Eu2+,Dy3+ composite as an efficient plasmonic photocatalyst for round-the-clock environmental purification and hydrogen evolution , 2019, Journal of Materials Chemistry A.
[19] Weiquan Cai,et al. Coupling of heterogeneous advanced oxidation processes and photocatalysis in efficient degradation of tetracycline hydrochloride by Fe-based MOFs: Synergistic effect and degradation pathway , 2019, Chemical Engineering Journal.
[20] Abdukader Abdukayum,et al. Dual-functional persistent luminescent nanoparticles with enhanced persistent luminescence and photocatalytic activity , 2019, RSC advances.
[21] G. Kattel. State of future water regimes in the world’s river basins: balancing the water between society and nature , 2019, Critical Reviews in Environmental Science and Technology.
[22] Junying Liu,et al. Photocatalytic hydrogen evolution with simultaneous antibiotic wastewater degradation via the visible-light-responsive bismuth spheres-g-C3N4 nanohybrid: Waste to energy insight , 2019, Chemical Engineering Journal.
[23] Guangming Zeng,et al. Selective prepared carbon nanomaterials for advanced photocatalytic application in environmental pollutant treatment and hydrogen production , 2018, Applied Catalysis B: Environmental.
[24] M. Hong,et al. Visible‐to‐NIR Photon Harvesting: Progressive Engineering of Catalysts for Solar‐Powered Environmental Purification and Fuel Production , 2018, Advanced materials.
[25] Yong Jiang,et al. Synergetic enhancement of plasmonic hot-electron injection in Au cluster-nanoparticle/C3N4 for photocatalytic hydrogen evolution , 2017 .
[26] Murugesu Sivapalan,et al. A Dynamic Framework for Water Security , 2017 .
[27] Ruiqin Wang,et al. Quinone-modified NH2-MIL-101(Fe) composite as a redox mediator for improved degradation of bisphenol A. , 2017, Journal of hazardous materials.
[28] Barack Obama,et al. The irreversible momentum of clean energy , 2017, Science.
[29] S. J. Dhoble,et al. Persistent luminescence: An insight , 2016 .
[30] Chunhua Lu,et al. Long afterglow phosphor driven round-the-clock g-C3N4 photocatalyst , 2016 .
[31] Yang Li,et al. Long persistent phosphors--from fundamentals to applications. , 2016, Chemical Society reviews.
[32] Yang Liu,et al. Hydroxyl radicals based advanced oxidation processes (AOPs) for remediation of soils contaminated with organic compounds: A review , 2016 .
[33] S. Pillai,et al. Visible-light activation of TiO2 photocatalysts: Advances in theory and experiments , 2015 .
[34] G. Kiriakidis,et al. Inactivation of MS2 coliphage in sewage by solar photocatalysis using metal-doped TiO2 , 2015 .
[35] L. Long,et al. Photosensitizing metal-organic framework enabling visible-light-driven proton reduction by a Wells-Dawson-type polyoxometalate. , 2015, Journal of the American Chemical Society.
[36] L. Ai,et al. Iron terephthalate metal–organic framework: Revealing the effective activation of hydrogen peroxide for the degradation of organic dye under visible light irradiation , 2014 .
[37] Na Li,et al. A highly selective and instantaneous nanoprobe for detection and imaging of ascorbic acid in living cells and in vivo. , 2014, Analytical chemistry.
[38] Qiang Zhao,et al. Functional near infrared-emitting Cr3+/Pr3+ co-doped zinc gallogermanate persistent luminescent nanoparticles with superlong afterglow for in vivo targeted bioimaging. , 2013, Journal of the American Chemical Society.
[39] J. Long,et al. Introduction to metal-organic frameworks. , 2012, Chemical reviews.
[40] Zhigang Xie,et al. Postsynthetic modifications of iron-carboxylate nanoscale metal-organic frameworks for imaging and drug delivery. , 2009, Journal of the American Chemical Society.
[41] Junying Zhang,et al. Light-storing photocatalyst , 2004 .
[42] Hongwei Huang,et al. Coupled adsorption and photocatalysis of g-C3N4 based composites: Material synthesis, mechanism, and environmental applications , 2023, Chemical Engineering Journal.
[43] Li Wang,et al. Development of photocatalyst based on NaYF4: Yb, Tm@NaYF4: Yb, Ce/NH2-MIL-101 (Cr): Doping Ce3+ ions to promote the efficient energy transfer between core and shell , 2022 .
[44] Zhongbiao Wu,et al. Synergistic degradation of NO and ethyl acetate by plasma activated “pseudo photocatalysis” on Ce/ZnGa2O4/NH2-UiO-66 catalyst: Restrictive relation and reaction pathways exploration , 2021 .
[45] Bo Zhang,et al. Enhanced removal of Cr(VI) by silicon rich biochar-supported nanoscale zero-valent iron. , 2019, Chemosphere.