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      Growth of villi-microstructured bismuth vanadate (Vm-BiVO 4) for photocatalytic degradation of crystal violet dye†

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      RSC Advances
      The Royal Society of Chemistry

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          Abstract

          In this work, villi-microstructured Au-loaded BiVO 4 photocatalysts were successfully synthesized by hydrothermal method. The as-synthesized photocatalysts were characterized by XRD, Raman, UV-Vis-DRS, PL, SEM and EDX techniques. The presence of metallic Au on the surface of Vm-BiVO 4 support boosts the photocatalytic performance to degrade toxic crystal violet dye. The enhanced activities were attributed to the surface plasmon resonance (SPR) of Au which efficiently broadens the visible light response. SPR increases the electron population in Vm-BiVO 4 and forms a Schottky barrier at the interface between Au and Vm-BiVO 4 which enhances the separation efficiency of photoinduced charges. Various factors affecting photocatalytic degradation of crystal violet (CV) were studied to find optimum conditions. In addition, a radical trapping study indicates that ˙O 2 is the main active species in the degradation process of cationic CV dye. All photocatalytic degradation reactions were monitored by UV-Vis spectrophotometry (PerkinElmer/λ-365).

          Abstract

          In this work, villi-microstructured Au-loaded BiVO 4 photocatalysts were successfully synthesized by hydrothermal method.

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          Semiconductor heterojunction photocatalysts: design, construction, and photocatalytic performances.

          Semiconductor-mediated photocatalysis has received tremendous attention as it holds great promise to address the worldwide energy and environmental issues. To overcome the serious drawbacks of fast charge recombination and the limited visible-light absorption of semiconductor photocatalysts, many strategies have been developed in the past few decades and the most widely used one is to develop photocatalytic heterojunctions. This review attempts to summarize the recent progress in the rational design and fabrication of heterojunction photocatalysts, such as the semiconductor-semiconductor heterojunction, the semiconductor-metal heterojunction, the semiconductor-carbon heterojunction and the multicomponent heterojunction. The photocatalytic properties of the four junction systems are also discussed in relation to the environmental and energy applications, such as degradation of pollutants, hydrogen generation and photocatalytic disinfection. This tutorial review ends with a summary and some perspectives on the challenges and new directions in this exciting and still emerging area of research.
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            Plasmonic photocatalysis.

            Plasmonic photocatalysis has recently facilitated the rapid progress in enhancing photocatalytic efficiency under visible light irradiation, increasing the prospect of using sunlight for environmental and energy applications such as wastewater treatment, water splitting and carbon dioxide reduction. Plasmonic photocatalysis makes use of noble metal nanoparticles dispersed into semiconductor photocatalysts and possesses two prominent features-a Schottky junction and localized surface plasmonic resonance (LSPR). The former is of benefit to charge separation and transfer whereas the latter contributes to the strong absorption of visible light and the excitation of active charge carriers. This article aims to provide a systematic study of the fundamental physical mechanisms of plasmonic photocatalysis and to rationalize many experimental observations. In particular, we show that LSPR could boost the generation of electrons and holes in semiconductor photocatalysts through two different effects-the LSPR sensitization effect and the LSPR-powered bandgap breaking effect. By classifying the plasmonic photocatalytic systems in terms of their contact form and irradiation state, we show that the enhancement effects on different properties of photocatalysis can be well-explained and systematized. Moreover, we identify popular material systems of plasmonic photocatalysis that have shown excellent performance and elucidate their key features in the context of our proposed mechanisms and classifications.
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              Controlling the synthesis and assembly of silver nanostructures for plasmonic applications.

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                Author and article information

                Journal
                RSC Adv
                RSC Adv
                RA
                RSCACL
                RSC Advances
                The Royal Society of Chemistry
                2046-2069
                13 January 2023
                11 January 2023
                13 January 2023
                : 13
                : 4
                : 2379-2391
                Affiliations
                [a ] Institute of Chemistry, Inorganic Materials Laboratory 52S, The Islamia University of Bahawalpur 63100 Pakistan ejaz.hussain@ 123456iub.edu.pk khezina.rafiq@ 123456iub.edu.pk +92-302-6500254
                Author information
                https://orcid.org/0000-0003-1072-7070
                https://orcid.org/0000-0002-1105-291X
                https://orcid.org/0000-0002-2390-4761
                Article
                d2ra07070g
                10.1039/d2ra07070g
                9838550
                36741159
                cdf61380-38c1-4ba8-a822-8496a0f70512
                This journal is © The Royal Society of Chemistry
                History
                : 7 November 2022
                : 26 December 2022
                Page count
                Pages: 13
                Funding
                Funded by: Higher Education Commision, Pakistan, doi 10.13039/501100010221;
                Award ID: 377/IPFP-II
                Categories
                Chemistry
                Custom metadata
                Paginated Article

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