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Titlebook: Nanostructured Materials for Environmental Applications; Subramanian Balakumar,Valérie Keller,M.V. Shankar Book 2021 Springer Nature Switz

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Nanostructured Heterojunction (1D-0D and 2D-0D) Photocatalysts for Environmental Remediation,of Cu, Cu.O, MnO., Ag, Ag.O, Au, Pt, etc. were reported emphasizing the special properties associated with the nanostructures like high surface area, abundant active sites, and efficient charge transfer across the interface of the heterojunction. Followed by 2D-0D heterojunctions associated with g-C
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Nanostructuring of Hybrid Materials Using Wrapping Approach to Enhance the Efficiency of Visible Lihotocatalysis, mostly semiconductor metal oxides have been used due to their suitable band gaps and band levels. However, it is suffering from poor light absorption, rapid charge recombination and slow reaction kinetics. In this chapter, we discuss and summarize the significance of wrapping of reduc
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Nanomaterials for Photocatalytic Decomposition of Endocrine Disruptors in Water,tion mechanism, reaction pathways, and the intermediated formed in various processes are described in detail. Lastly, the prospects together with the challenges for heterogeneous photocatalysis for decompositions of EDC are summarized and discussed.
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Magnetically Recyclable Photocatalysts for Degradation of Organic Pollutants in Aquatic Environmentes, such as (a) catalyst, (b) co-catalyst, or (c) dopant. Among these roles, the application of magnetic material as a co-catalyst is found to be more promising due to its ability to extend the absorption of light in the wide range of solar spectrum (i.e., UV to NIR region). Moreover, the magnetic m
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Graphene-Based Photocatalytic Materials: An Overview,llutants, microbial inactivation, carbon dioxide reduction and water splitting, are also highlighted. Other applications such as nitrogen fixation and photoreduction of heavy metal were also discussed. Future directions and perspectives on this topic were summarised.
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Recent Advances in Nanostructured Materials for Detoxification of Cr(VI) to Cr(III) for Environmentrm functional groups sites as a well-organized adsorbent site. All these properties might be applicable for the enhancement of detoxification or removal of Cr(VI) in wastewater under UV-visible and in the presence of bacterias. In this chapter, we reviewed recent nanostructures for detoxification of
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