“…[24][25][26][27] In particular, the addition of a carbonaceous component to a photocatalyst composite can improve the photocatalytic efficiency by improving pollutant adsorption, visible light absorption, and efficient charge separation. [28][29][30] Carbon materials have remarkable adsorption properties allowing for the accumulation of pollutants on their surface; this facilitates rapid interaction between active species and pollutant molecules. 28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light.…”
Section: Introductionmentioning
confidence: 99%
“…[28][29][30] Carbon materials have remarkable adsorption properties allowing for the accumulation of pollutants on their surface; this facilitates rapid interaction between active species and pollutant molecules. 28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light. 28,35 This doping interaction can occur through the substitution of carbon at titanium (C-O bond) or oxygen sites (Ti-C bond) in the TiO 2 lattice, resulting in band gap narrowing and extended absorption edge.…”
Section: Introductionmentioning
confidence: 99%
“…28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light. 28,35 This doping interaction can occur through the substitution of carbon at titanium (C-O bond) or oxygen sites (Ti-C bond) in the TiO 2 lattice, resulting in band gap narrowing and extended absorption edge. [35][36][37] Moreover, carbon materials can form electron sinks which can enhance the charge separation within TiO 2 .…”
New orange peel biochar/clay/titania nanocomposites (NCs) were studied for photocatalytic tetracycline (TET) degradation under both UV and natural solar irradiation by variation of NC dose, initial TET concentration, ionic strength,...
“…[24][25][26][27] In particular, the addition of a carbonaceous component to a photocatalyst composite can improve the photocatalytic efficiency by improving pollutant adsorption, visible light absorption, and efficient charge separation. [28][29][30] Carbon materials have remarkable adsorption properties allowing for the accumulation of pollutants on their surface; this facilitates rapid interaction between active species and pollutant molecules. 28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light.…”
Section: Introductionmentioning
confidence: 99%
“…[28][29][30] Carbon materials have remarkable adsorption properties allowing for the accumulation of pollutants on their surface; this facilitates rapid interaction between active species and pollutant molecules. 28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light. 28,35 This doping interaction can occur through the substitution of carbon at titanium (C-O bond) or oxygen sites (Ti-C bond) in the TiO 2 lattice, resulting in band gap narrowing and extended absorption edge.…”
Section: Introductionmentioning
confidence: 99%
“…28,[31][32][33][34] Secondly, doping of TiO 2 with carbonaceous material contributes to increased absorption of visible light. 28,35 This doping interaction can occur through the substitution of carbon at titanium (C-O bond) or oxygen sites (Ti-C bond) in the TiO 2 lattice, resulting in band gap narrowing and extended absorption edge. [35][36][37] Moreover, carbon materials can form electron sinks which can enhance the charge separation within TiO 2 .…”
New orange peel biochar/clay/titania nanocomposites (NCs) were studied for photocatalytic tetracycline (TET) degradation under both UV and natural solar irradiation by variation of NC dose, initial TET concentration, ionic strength,...
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