2019
DOI: 10.1016/j.jclepro.2019.04.292
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Carbon quantum dot supported semiconductor photocatalysts for efficient degradation of organic pollutants in water: A review

Abstract: Semiconductor photocatalyst mediated advanced oxidation processes are regarded as one of the most efficient technologies to mitigate organic pollutants in water. However, poor activity under visible light and the recombination of photogenerated electron and hole pairs hinder large scale applicability of semiconductor photocatalysts for water purification. The modification of semiconductor photocatalysts with carbon quantum dots (CQDs) is of high importance due to low toxicity, aqueous stability, enhanced surfa… Show more

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Cited by 347 publications
(101 citation statements)
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“…In the last years, carbon-based nanostructured materials, such as graphene and its derivatives [155,156], fullerenes, activated carbons [26,157], biochar [158,159], carbon nanotubes (CNTs) [13,160], and nanoparticles [161], have been of great interest because of their unique structural, electrical, and mechanical properties, offering promising opportunities for photocatalytic applications (Figure 7).…”
Section: Carbon-based Hybrid Nanomaterialsmentioning
confidence: 99%
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“…In the last years, carbon-based nanostructured materials, such as graphene and its derivatives [155,156], fullerenes, activated carbons [26,157], biochar [158,159], carbon nanotubes (CNTs) [13,160], and nanoparticles [161], have been of great interest because of their unique structural, electrical, and mechanical properties, offering promising opportunities for photocatalytic applications (Figure 7).…”
Section: Carbon-based Hybrid Nanomaterialsmentioning
confidence: 99%
“…In this way, one of the most studied strategies to improve the photocatalytic activity is based on its combination with a carbon-based material (p-type semiconductor) in order to induce an enhancement of charge separation yield and extension of the electron lifetime [13]. By following different synthetic approaches, a large variety of hybrid nanostructured materials were recently designed and prepared, combining TiO 2 with different types of carbon-based materials (Figure 9), such as graphene, graphene oxide (GO) [164,165] and reduced graphene oxide (rGO) [69,118,[166][167][168], CNTs [164,169], carbon particles [161,164,[170][171][172], fullerene [169,173], and biochar [158,159,174], working as adsorbers, electron acceptors, and transporters. These hybrid nanostructured materials showed an enhanced visible light absorption, also exhibiting both excellent adsorption capability and photocatalytic activity, for the removal of pollutants [169,175,176] and heavy metal ions from wastewater [177][178][179], photo-oxidative treatment of organics [167,168,180], as well as water splitting and hydrogen production [178,[181][182][183][184][185].…”
Section: Carbon-based/tio 2 Hybridsmentioning
confidence: 99%
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“…The heterojunctions between two or more nanostructured semiconductors were broadly applied to increase energy absorption for various photocatalytic reactions. Nanocomposite photocatalyst possess several advantages include (1) higher light absorption: semiconductors due to having narrow bandgap performed more visible light absorbability (2) co‐catalyst effect: composition with a suitable cocatalyst can decrease redox potential at respective active places; (3) efficient photogenerated electron–hole pairs separation and transference utilizing p–n junction or Schottky junction formation between metal/semiconductor heterojunction and (4) stability achieved by sheltering of active sites and functional groups on semiconductor surface through surface passivation …”
Section: Introductionmentioning
confidence: 99%
“…However, its applications, such as its use in tire cord and conveyor belts, are limited because of insufficient strength. To further improve the physical-mechanical properties of PA66, many additives have been used in the research, such as glass fiber [1,2], carbon fiber [3], carbon nanotubes [4][5][6][7][8], graphene [9], and so forth [10][11][12][13][14].…”
Section: Introductionmentioning
confidence: 99%