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Chuanyi Wang - One of the best experts on this subject based on the ideXlab platform.
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Visible-light-driven Ag/AgCl@In2O3: a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
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visible light driven ag agcl in2o3 a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
Yanyan Duan - One of the best experts on this subject based on the ideXlab platform.
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Visible-light-driven Ag/AgCl@In2O3: a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
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visible light driven ag agcl in2o3 a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
Chinghua Huang - One of the best experts on this subject based on the ideXlab platform.
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oxidation of Tetracycline Antibiotics induced by fe iii ions without light irradiation
Chemosphere, 2015Co-Authors: Hui Wang, Hong Yao, Jin Pei, Peizhe Sun, Chinghua HuangAbstract:The presence of Fe(III) ions was found to induce degradation of three Tetracycline Antibiotics (TCs), Tetracycline (TTC), oxyTetracycline (OTC) and chloroTetracycline (CTC), in aqueous solutions without light. The presence of Fe(III) promoted the degradation of TCs in most experimental pH (5.0, 7.0 and 9.0) except at pH 9.0 for CTC. Degradation rate constants of TTC, OTC and CTC reached maximum ((6.2±0.5)×10(-3) h(-1), (10.6±0.1)×10(-3) h(-1) and (15.9±0.5)×10(-3) h(-1) at pH 7.0, 20 °C) when Fe(III):TC molar ratio was 1:1, 1:1 and 2:1, respectively. Such metal-to-ligand ratios agreed well with the most favorable complexation between Fe(III) and each TC. Compared to without metals, Fe(III) enhanced the degradation rate of TTC, OTC and CTC by up to 20.67, 7.07 and 2.30 times, respectively, in clean water matrix, and also promoted degradation of TCs in real surface water and wastewater matrices. The promoted degradation likely occurred via complexation of TCs and subsequent oxidation by Fe(III). Degradation results of CTC versus 4-epi-CTC suggested Fe(III) likely binds to TCs' C4 dimethylamino group. Toxicity of the complexes evaluated using Photobacterium phosphoreum T3 was increased after several hours of reaction, suggesting the transformation products may exert a stronger toxicity than parent TCs. This study identifies new oxidative transformation of TCs induced by Fe(III) ions without light irradiation, further supporting the important role of iron species in the environmental fate of TCs.
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transformation kinetics and pathways of Tetracycline Antibiotics with manganese oxide
Environmental Pollution, 2011Co-Authors: Wan Ru Chen, Chinghua HuangAbstract:Abstract Tetracycline Antibiotics including Tetracycline (TTC), oxyTetracycline (OTC) and chloroTetracycline (CTC) undergo rapid transformation to yield various products in the presence of MnO 2 at mild conditions (pH 4–9 and 22 °C). Reaction rates follow the trend of CTC > TTC > OTC, and are affected by pH and complexation of TCs with Mg 2+ or Ca 2+ . Experimental results of TTC indicate that MnO 2 promotes isomerization at the C ring to form iso-TTC and oxidizes the phenolic-diketone and tricarbonylamide groups, leading to insertion of up to 2 O most likely at the C9 and C2 positions. In contrast, reactions of OTC with MnO 2 generate little iso-OTC, but occur mainly at the A ring’s dimethylamine group to yield N -demethylated products. CTC yields the most complicated products upon reactions with MnO 2 , encompassing transformation patterns observed with both TTC and OTC. The identified product structures suggest lower antibacterial activity than that of the parent Tetracyclines.
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adsorption and transformation of Tetracycline Antibiotics with aluminum oxide
Chemosphere, 2010Co-Authors: Wan Ru Chen, Chinghua HuangAbstract:Abstract Tetracycline Antibiotics (TCs) including Tetracycline (TTC), chloroTetracycline (CTC) and oxyTetracycline (OTC) adsorb strongly to aluminum oxide (Al2O3), and the surface interaction promotes structural transformation of TCs. The latter phenomenon was not widely recognized previously. Typically, rapid adsorption of TCs to Al2O3 occurs in the first 3 h ([TC] = 40 μM, [Al2O3] = 1.78 g L−1, pH = 5, and T = 22 °C), followed by continuous first-order decay of the parent compound (kobs = 15 ± 1.0, 18 ± 1.0 and 6.2 ± 0.9 × 10−3 h−1 for TTC, CTC and OTC, respectively) and product formation. The transformation reaction rate of TCs strongly correlates with adsorption to Al2O3 surfaces. Both adsorption and transformation occur at the highest rate at around neutral pH conditions. Product evaluation indicates that Al2O3 promotes dehydration of TTC to yield anhydroTetracycline (AHTTC), epimerization of TTC, and formation of Al-TTC complexes. Al2O3 promotes predominantly the transformation of CTC to iso-CTC. The surface-bound Al(+III) acts as a Lewis acid site to promote the above transformation of TCs. Formation of AHTTC is of special concern because of its higher cytotoxicity. Results of this study indicate that aluminum oxide will likely affect the fate of TC Antibiotics in the aquatic environment via both adsorption and transformation.
Mingzhe Yuan - One of the best experts on this subject based on the ideXlab platform.
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Visible-light-driven Ag/AgCl@In2O3: a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
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visible light driven ag agcl in2o3 a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
Qingguo Meng - One of the best experts on this subject based on the ideXlab platform.
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Visible-light-driven Ag/AgCl@In2O3: a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.
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visible light driven ag agcl in2o3 a ternary photocatalyst for the degradation of Tetracycline Antibiotics
Catalysis Science & Technology, 2020Co-Authors: Yanyan Duan, Xin Zhou, Guimei Liu, Xin Wang, Yuanhao Wang, Mingzhe Yuan, Qingguo Meng, Chuanyi WangAbstract:The abuse of Tetracycline Antibiotics (TCs) has created great threats to both human health and the ecosystem. Therefore, developing efficient technologies to remediate these contaminants is of significant and practical interest. In this work, a ternary plasmonic Ag/AgCl@In2O3 nanocomposite was synthesized by growing AgCl on the surface of one-dimensional In2O3 nanorods, followed by the in situ photoreduction of Ag from AgCl on AgCl@In2O3. The as-synthesized Ag/AgCl@In2O3 nanocomposite exhibits excellent performance for the photocatalytic degradation of Tetracycline (TTC) with a degradation rate constant of 0.166 min−1, which is much better than that of pristine In2O3, Ag@In2O3, AgCl@In2O3, Ag/AgCl, and In2O3 + Ag/AgCl (the mechanical mixture of In2O3 and Ag/AgCl) samples. Five photocatalytic cycling tests demonstrate that Ag/AgCl@In2O3 possesses outstanding stability. In addition, Ag/AgCl@In2O3 also exhibits excellent photo-activity for the degradation of other types of Tetracycline Antibiotics, e.g. chlorTetracycline (CTC) and oxyTetracycline (OTC). Further trapping experiments prove that h+ and ˙O2− are responsible for the photocatalytic reactions. The enhancement in the photoactivity of the Ag/AgCl@In2O3 system is largely due to the surface plasmon resonance effect (SPR) provided by the Ag nanoparticles, which inject electrons into AgCl and/or In2O3, and the efficient separation of photoinduced carriers is possible by transferring electrons to the conduction band of In2O3. This work provides a new type of photocatalyst towards the effective treatment of Tetracycline Antibiotics in aqueous systems.