In this work, the emphasis was mainly placed on investigating the sonocatalytic activity of TiO(2)-ZnO mixed with Er(3+):YAlO(3), namely, Er(3+):YAlO(3)/TiO(2)-ZnO composite. It is able to utilize the sonoluminescence light to improve the sonocatalytic degradation of organic dyes. The Er(3+):YAlO(3) as up-conversion luminescence agent was synthesized by sol-gel and auto-combustion method, and then Er(3+):YAlO(3)/TiO(2)-ZnO composite as sonocatalyst were prepared by ultrasonic dispersion and liquids boil method. The prepared up-conversion luminescence agent and composites were characterized by X-ray diffraction (XRD) and scanning electron microscope (SEM). Acid Red B dye was selected to examine the sonocatalytic activity of Er(3+):YAlO(3)/TiO(2)-ZnO composite. The degradation reaction processes were monitored by UV-vis spectrophotometer and ion chromatogram. The influences on the activity of the Er(3+):YAlO(3)/TiO(2)-ZnO such as Ti/Zn molar ratio, heat-treated temperature and heat-treated time were studied. The results showed that the Er(3+):YAlO(3)/TiO(2)-ZnO composite exhibited a significantly high sonocatalytic activity compared with other catalysts in the degradation of Acid Red B. And the sonocatalyst with 1:1 Ti/Zn molar ratio heat-treated at 550°C for 60min showed the highest sonocatalytic activity. At last, the experiment also indicated that it has a good sonocatalytic activity to degrade other organic dyes.
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http://dx.doi.org/10.1016/j.ultsonch.2010.09.012 | DOI Listing |
Nanomaterials (Basel)
November 2024
College of Civil Engineering, Sichuan Agricultural University, Dujiangyan 611830, China.
J Colloid Interface Sci
March 2025
School of Materials and Chemistry, Institute of Bismuth Science, University of Shanghai for Science and Technology, Shanghai 200093, China; Shanghai Collaborative Innovation Center of Energy Therapy for Tumors, Shanghai 200093, China. Electronic address:
Artificially synthesized nanozymes exhibit enzymatic activity similar to that of natural enzymes. However, in the complex tumor microenvironment, their diversity and catalytic activity show significant variations, limiting their effectiveness in catalytic therapy. Developing artificial enzymes with multiple enzymatic activities and spatiotemporal controllable catalytic abilities is of great clinical significance.
View Article and Find Full Text PDFMolecules
November 2024
College of Chemistry, Chemical Engineering, and Materials Science, Soochow University, Suzhou 215123, China.
Cu(II) and Mn(II) coordination polymers [Cu(ttpa)(sub)] ( or ) and {[Mn(ttpa)(nip)(HO)]·3HO} ( or ) (ttpa = tris(4-(1,2,4-triazol-1-yl)phenyl)amine, Hsub = suberic acid, nip = 5-nitroisophthalicate) were hydrothermally prepared and the structures were characterized. exhibited a 2D (4,4) network based on [Cu(COO)] dimers with upper and lower dangled ttpa ligands and a 2D → 3D polythreaded network. showed a 2D (4,4) network with dangled uncoordinated triazole rings from ttpa ligands and nitro groups from nip ligands and a 2D → 3D polythreaded network.
View Article and Find Full Text PDFBiomaterials
April 2025
Department of Anesthesiology, Shanghai Chest Hospital, Shanghai Jiao Tong University, School of Medicine, Shanghai, 200030, China. Electronic address:
Inducing reactive oxygen species (ROS) via sonocatalysis to initiate inflammatory programmed cell death (PANoptosis) and immunogenic cell death (ICD) presents a promising strategy for activatable cancer immunotherapy. However, the limited ROS generation by sonosensitizers under ultrasound and the immunosuppressive tumor microenvironment hinder the efficiency of sono-immunotherapy. To overcome these challenges, a bismuth-based ternary heterojunction, Bi@BiO-Pt-PEG (BBOP), was developed for sonocatalytic therapy aimed at activating immune responses.
View Article and Find Full Text PDFAdv Sci (Weinh)
December 2024
Department of Medical Ultrasound, Center of Minimally Invasive Treatment for Tumor, Shanghai Tenth People's Hospital, School of Medicine, Tongji University, Shanghai, 200072, P. R. China.
Pyroptosis, an inflammatory cell death, has attracted great attention for potentiating a strong immune response against tumor cells. However, developing powerful pyroptosis inducers and then activating specific pyroptosis still remains challenging. Herein, a PEG-CuP-COF@∆St nanosystem is rationally designed, consisting of PEG-CuP-COF nanozyme pyroptosis inducers and tumor-targeting bacteria of the Salmonella Typhimurium strain VNP20009 (ΔSt), with an affinity for the tumor hypoxic microenvironment.
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