Photocatalytic Degradation of Rhodamine B by Recyclable AgBr/Polypyrrole(PPy) Nano-Catalysts

Xiaogang Yin , Xinyun Liu , Hang Li , Huimin Wu , Hai Fu , Wei Gong

Journal of Wuhan University of Technology Materials Science Edition ›› 2023, Vol. 38 ›› Issue (5) : 1198 -1204.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2023, Vol. 38 ›› Issue (5) : 1198 -1204. DOI: 10.1007/s11595-023-2810-5
Organic Materials

Photocatalytic Degradation of Rhodamine B by Recyclable AgBr/Polypyrrole(PPy) Nano-Catalysts

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Abstract

We investigated the removal of the organic dye rhodamine B in wastewater with recyclable AgBr/polypyrrole (PPy) nano-photocatalysts. With PPy as an active base for electron transfer, and hexadecyltrimethylammonium bromide (CTAB) as both the soft-templating agent and the bromine source, a series of AgBr/PPy nano-photocatalysts containing various proportions of silver were prepared in a convenient one-step synthesis procedure. The synthesized catalysts were characterized by TG analysis to reveal that, in comparison with pure PPy, the interaction between PPy and AgBr led to increased thermal stability. Chemical combination of PPy and AgBr was observed through XRD and XPS analyses. For the morphology study, the AgBr particles were found to be well dispersed in the PPy nanowire network from SEM results. In the photodegradation experiments, up to 92% rhodamine B was degraded by the AgBr/PPy catalysts in the period of 1 hour under 254 nm UV light. The catalysts could maintain 60% catalytic efficiency after 3 cycles in the recyclability test.

Keywords

polypyrrole / AgBr / photocatalysts / rhodamine B

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Xiaogang Yin, Xinyun Liu, Hang Li, Huimin Wu, Hai Fu, Wei Gong. Photocatalytic Degradation of Rhodamine B by Recyclable AgBr/Polypyrrole(PPy) Nano-Catalysts. Journal of Wuhan University of Technology Materials Science Edition, 2023, 38(5): 1198-1204 DOI:10.1007/s11595-023-2810-5

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References

[1]

Valizadeh S, Rasoulifard M H, Dorraji M S S. Adsorption and Photo-catalytic Degradation of Organic Dyes onto Crystallineand Amorphous Hydroxyapatite: Optimization, Kinetic and Isotherm Studies[J]. Korean J. Chem. Eng., 2016, 33(2): 481-489.

[2]

Welander U. Microbial Degradation of Organic Pollutants in Soil in a Cold Climate[J]. J. Soil Contam., 2005, 14(3): 281-291.

[3]

Samet Y, Elaoud S C, Ammar S, et al. Electrochemical Degradation of 4-Chloroguaiacol for Wastewater Treatment Using PbO2, Anodes[J]. J. Hazard Mater., 2006, 138(3): 614-619.

[4]

Pirhashemi M, Habibiyangjeh A. Photosensitization of ZnO by AgBr and Ag2CO3: Nanocomposites with Tandem N-N Heterojunctions and Highly Enhanced Visible-Light Photocatalytic Activity[J]. J. Colloid Interface Sci., 2016, 474(475): 103-113.

[5]

Zhao H, Zhang L, Gu X, et al. Fe2O3-AgBr Nonwoven Cloth with Hierarchical Nanostructures as Efficient and Easily Recyclable Macroscale Photocatalysts[J]. RSC Adv., 2015, 5(15): 10951-10959.

[6]

Wang H H, Zhou P J, Wang J, et al. Synthesis and Characterization of Rectorite/ZnO/TiO2 Composites and Their Properties of Adsorption and Photocatalysis for the Removal of Methylene Blue Dye[J]. J. Wuhan. Univ. Technol. -Mat. Sci. Ed., 2018, 33(3): 729-735.

[7]

Yao S, Xue S, Zhang J, et al. Characterization and Mechanism Analysis of AgBr Mixed Cuboid WO3 Rods with Enhanced Photocatalytic Activity[J]. RSC Adv., 2016, 10(10): 1039-1053.

[8]

Liu X, Hong H, Wu X, et al. Synthesis of TiO2-Reduced Graphene Oxide Nanocomposites for Efficient Adsorption and Photodegradation of Herbicides[J]. Water Air Soil Poll., 2016, 227(1): 1-8.

[9]

Grabowska E, Joanna R, Zaleska A. Mechanism of Phenol Photodegradation in the Presence of Pure and Modified-TiC: A Review[J]. Water Res., 2012, 46(17): 5453-5471.

[10]

Ma Y, Zheng Y M, Chen J P. A Zirconium Based Nanoparticle for Significantly Enhanced Adsorption of Arsenate: Synthesis, Characterization and Performance[J]. J. Colloid Interface Sci., 2011, 354(2): 785-792.

[11]

Velmurugan R, Sreedhar B, Swaminathan M. Nanostructured AgBr Loaded An Efficient Sunlight Active Photocatalyst for Degradation of Reactive Red 120[J]. Chem. Cent., 2011, 5(1): 46-55.

[12]

Wang H, Liu Y, Hu P, et al. AgBr Nanocrystals from Plates to Cubes and Their Photocatalytic Properties[J]. Chemcatchem., 2013, 5(6): 1426-1430.

[13]

Pourahmad A, Sohrabnezhad S, Kashefian E. AgBr/Nanoalmcm-41 Visible Light Photocatalyst for Degradation of Methylene Blue Dye[J]. Spectrochim Acta. A, 2010, 77(5): 1108-1114.

[14]

Cao J, Luo B, Lin H, et al. Visible Light Photocatalytic Activity Enhancement and Mechanism of Agbr/Ag3PO4 Hybrids for Degradation of Methyl Orange[J]. J. Hazard Mater., 2012, 217: 107-115.

[15]

Yang Y, Guo W, Guo Y, et al. Fabrication of Z-Scheme Plasmonic Photocatalyst Ag@AgBr/G-C3N4 with Enhanced Visible-Light Photocatalytic Activity[J]. J. Hazard Mater., 2014, 271: 150-159.

[16]

Wang P, Tang Y, Dong Z, et al. Ag-AgBr/T/RGO Nanocomposite for Visible-Light Photocatalytic Degradation of Penicillin G[J]. J. Mater. Chem. A, 2013, 1(15): 4718-4727.

[17]

Zheng Z, Huang B, Qin X, et al. Facile in Situ Synthesis of Visible-Light Plasmonic Photocatalysts M@TiO2 (M = Au, Pt, Ag) and Evaluation of Their Photocatalytic Oxidation of Benzene to Phenol[J]. J. Mater. Chem., 2011, 21(25): 9079-9088.

[18]

Shi H, Chen J, Li G, et al. Synthesis and Characterization of Novel Plasmonic Ag/AgX-CNTs (X = Cl, Br, I) Nanocomposite Photocatalysts and Synergetic Degradation of Organic Pollutant under Visible Light[J]. ACS. Appl. Mater. Inter., 2013, 5(15): 6959-6967.

[19]

Song J, Shi Y, Ren M, et al. Synthesis, Characterization and Excellent Photocatalytic Activity of Ag/AgBr/MoO3 Composite Photocatalyst[J]. Appl. Phys. A, 2014, 116(4): 2139-2147.

[20]

Akhundi A, Habibi-Yangjeh A. Novel Magnetically Separable g-C3N4/AgBr/Fe3O4, Nanocomposites as Visible-Light-Driven Photocatalysts with Highly Enhanced Activities[J]. Ceram. Int., 2015, 41(4): 5634-5643.

[21]

Xiao H, Lei L W, Wang Z Q, et al. Facile Synthesis of Mesoporous Cuprous Oxide Nanoparticles for Enhanced Visible-Light-Driven Photodegradation[J]. J. Wuhan. Univ. Technol. -Mat. Sci. Ed., 2018, 33(1): 91-96.

[22]

He Q, Rui K, Chen C, et al. Interconnected CoFe2O4-Polypyrrole Nanotubes as Anode Materials for High Performance Sodium Ion Batteries[J]. ACS. Appl. Mater. Inter., 2017, 9(42): 36927-36935.

[23]

Xu X, Tang J, Qian H, et al. Three-Dimensional Networked Metal-Organic Frameworks with Conductive Polypyrrole Tubes for Flexible Supercapacitors[J]. ACS. Appl. Mater. Inter., 2017, 9(44): 38737-38744.

[24]

An K H, Jeong S Y, Hwang H R, et al. Enhanced Sensitivity of a Gas Sensor Incorporating Single-Walled Carbon Nanotube-Polypyrrole Nanocomposites[J]. Adv. Mater., 2010, 16(12): 1005-1009.

[25]

Zhang X, Zhang J, Liu Z, et al. Inorganic/Organic Mesostructure Directed Synthesis of Wire/Ribbon-Like Polypyrrole Nanostructures[J]. Chem. Commun., 2004, 10(16): 1852-1853.

[26]

Zhong W B, Liu S M, Chen X H, et al. High-Yield Synthesis of Superhydrophilic Polypyrrole Nanowire Networks[J]. Macromolecules, 2006, 39(9): 3224-3230.

[27]

Liu L, Zhao C J, Zhao Y M, et al. Characteristics of Polypyrrole (PPy) Nano-Tubules Made by Templated Ac Electropolymerization[J]. Eur. Polym. J., 2005, 41(9): 2117-2121.

[28]

Kim B H, Park D H, Joo J, et al. Synthesis, Characteristics, and Field Emission of Doped and De-doped Polypyrrole, Polyaniline, Poly(3,4-Ethylenedioxythiophene) Nanotubes and Nanowires[J]. Synthetic Met., 2005, 150(3): 279-284.

[29]

Li J, Zhong F, Deng F, et al. Enhancing the Visible Light Photocatalytic Performance of TiO2 Nanotube Arrays Modified by Polypyrrole-Polyaniline Copolymers[J]. J. Mater. Sci. Eng., 2018, 36(02): 207-212.

[30]

Chen C N, Fu W, Zhou Q. Fabrication of Fe2O3@polypyrrole Nano-tubes and the Catalytic Properties Under the Ultrasound[J]. J. Wuhan. Univ. Technol. -Mat. Sci. Ed., 2013, 28(5): 990-996.

[31]

Zou Z, Li Y, Ma Z, et al. Preparation and Dye Adsorption of Low-cost Polyaniline-tea Saponin Nanocomposites[J]. J. Wuhan. Univ. Technol. -Mat. Sci. Ed., 2021, 36(4): 546-556.

[32]

Zhang C M, Chen Y J, Li H, et al. Facile Fabrication of Three-Dimensional Lightweight RGO/PPy Nanotube/Fe3O4 Aerogel with Excellent Electromagnetic Wave Absorption Properties[J]. ACS Omega, 2018, 3(5): 5735-5743.

[33]

Sher Shah M S A, Kim W J, Park J, et al. Highly Efficient and Recyclable Nanocomplexed Photocatalysts of AgBr/N-Doped and Amine-Functionalized Reduced Graphene Oxide[J]. ACS Appl. Mater. Inter., 2014, 6(23): 20819-20827.

[34]

Mavinakuli P, Wei S Y, Wang Q, et al. Polypyrrole/Silicon Carbide Nanocomposites with Tunable Electrical Conductivity[J]. J. Phys. Chem. C, 2010, 114(9): 12-19.

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