Metal–organic complex-derived 3D porous carbon-supported g-C3N4/TiO2 as photocatalysts for the efficient degradation of antibiotic?
CrystEngComm Pub Date: 2021-06-08 DOI: 10.1039/D1CE00709B
Abstract
Metal–organic complexes (MOCs) derived porous carbon have attracted considerable attention due to easy functionalization with metal/metal oxides or other heteroatoms and hierarchical porosity. Herein, four g-C3N4/TiO2/CNOT photocatalyst structures were prepared via a reasonable design and control of the amount of MOC crystal materials. g-C3N4/TiO2/CNOT photocatalysts have a 3D porous structure, high surface area and heterojunction interface between g-C3N4 and TiO2, which together enhance the adsorption and photocatalytic performance. The 3D porous structure of g-C3N4/TiO2/CNOT supplied multidimensional adsorption-enrichment sites, and the heterojunction promoted the separation of the photogenerated electrons and holes. The g-C3N4/TiO2/CNOT-15 photocatalyst with the highest surface area reached up to 1644.1 m2 g?1. Heterojunctions promoted the separation and migration of the photogenerated electrons and holes. Benefiting from the above-mentioned excellent characteristics, g-C3N4/TiO2/CNOT exhibits efficient synergistic adsorption–photocatalysis performance for the removal of chlortetracycline hydrochloride (CTC-HCl). Apparently, g-C3N4/TiO2/CNOT-15 shows the highest CTC-HCl photocatalytic efficiency up to 97.8% after 60 min in the static system. In the dynamic system, the maximum CTC-HCl removal rate reached 35.5% and equilibrium removal rate was 19.9%. Free radical trapping experiments demonstrated that ˙O2? radical, ˙OH radical and holes serving as active species work together to promote photocatalytic reactions. This study provides a clear direction for the preparation of a 3D porous heterojunction for the efficient removal of antibiotics via synergy adsorption and photocatalysis.
Recommended Literature
- [1] An artificial photosynthetic system for photoaccumulation of two electrons on a fused dipyridophenazine (dppz)–pyridoquinolinone ligand? Philipp Traber,Stephan Kupfer,Stefanie Gr?fe,Isabelle Baussanne,Martine Demeunynck,Jean-Marie Mouesca,Serge Gambarelli,Vincent Artero,Murielle Chavarot-KerlidouChem. Sci., 2018,9, 4152-4159 10.1039/C7SC04348A
- [2] An analysis of the WTC fires using CIB correlations and simple modeling JGQuintiere 10.1177/0734904121989670
- [3] An investigation on the second-order nonlinear optical response of cationic bipyridine or phenanthroline iridium(iii) complexes bearing cyclometallated 2-phenylpyridines with a triphenylamine substituent? David B. Cordes,Alexandra M. Z. Slawin,Stefania Righetto,Denis Jacquemin,Eli Zysman-Colman,Véronique GuerchaisDalton Trans., 2018,47, 8292-8300 10.1039/C8DT00754C
- [4] An asymmetric supercapacitor based on controllable WO3 nanorod bundle and alfalfa-derived porous carbon? Kanjun Sun,Fengting Hua,Shuzhen Cui,Yanrong Zhu,Hui Peng,Guofu MaRSC Adv., 2021,11, 37631-37642 10.1039/D1RA04788D
- [5] An artificial CO-releasing metalloprotein built by histidine-selective metallation? Inês S. Albuquerque,Hélia F. Jeremias,Miguel Chaves-Ferreira,Dijana Matak-Vinkovic,Omar Boutureira,Carlos C. Rom?oChem. Commun., 2015,51, 3993-3996 10.1039/C4CC10204E
- [6] An anti-leakage liquid metal thermal interface material Kaiyuan Huang,Wangkang Qiu,Meilian Ou,Xiaorui Liu,Zenan Liao,Sheng ChuRSC Adv., 2020,10, 18824-18829 10.1039/D0RA02351E
- [7] An arsenic trioxide nanoparticle prodrug (ATONP) potentiates a therapeutic effect on an aggressive hepatocellular carcinoma model via enhancement of intratumoral arsenic accumulation and disturbance of the tumor microenvironment? Xin Fu,Qing-rong Liang,Rong-guang Luo,Yan-shu Li,Xiao-ping Xiao,Lu-lu Yu,Wen-zhe Shan,Guang-qin FanJ. Mater. Chem. B, 2019,7, 3088-3099 10.1039/C9TB00349E
- [8] An investigation of surface properties, local elastic modulus and interaction with simulated pulmonary surfactant of surface modified inhalable voriconazole dry powders using atomic force microscopy Michael Kappl,Paul M. Young,Daniela Traini,Sanyog JainRSC Adv., 2016,6, 25789-25798 10.1039/C6RA01154C
- [9] An Assessment of the Laminar Hypersonic Double-Cone Experiments in the LENS-XX Tunnel JaideepRay,PatrickBlonigan,EricT.Phipps,KathrynMaupin 10.2514/1.j062802
- [10] An artificial photosynthesis system comprising a covalent triazine framework as an electron relay facilitator for photochemical carbon dioxide reduction? Siquan Zhang,Shengyao Wang,Liping Guo,Hao Chen,Bien Tan,Shangbin JinJ. Mater. Chem. C, 2020,8, 192-200 10.1039/C9TC05297F
Journal Name:CrystEngComm
research_products
-
CAS no.: 89640-58-4