首页> 外文期刊>Photochemistry and Photobiology: An International Journal >New Magnetically Recyclable Reduced Graphene Oxide rGO/MFe2O4 (M= Ca, Mg)/Ag3PO4 Nanocomposites With Remarkably Enhanced Visible-light Photocatalytic Activity and Stability
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New Magnetically Recyclable Reduced Graphene Oxide rGO/MFe2O4 (M= Ca, Mg)/Ag3PO4 Nanocomposites With Remarkably Enhanced Visible-light Photocatalytic Activity and Stability

机译:新型磁性可回收的石墨烯氧化物RGO / MFE2O4(M = Ca,Mg)/ Ag3PO4纳米复合材料,具有显着增强的可见光光催化活性和稳定性

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摘要

New magnetically separable CaFe2O4/Ag3PO4, MgFe2O4/Ag3PO4, rGO/CaFe2O4/Ag3PO4 and rGO/MgFe2O4/Ag3PO4 photocatalysts were synthesized by the hydrothermal and ion-exchange deposition method. These four types of photocatalyst were used for degradation of Methylene blue (MB), Methyl orange (MO) and 4-chlorophenol (4-CP) in aqueous solution under visible-light illumination. The optimized photocatalyst, i.e. rGO/CaFe2O4/Ag3PO4 with a mass ratio of (1:3:9) composite not only shows the highest photocatalytic performance for the degradation of MB, MO and 4-CP under visible light irradiation among the other synthesized photocatalysts but also exhibits high reusability and stability for at least five cycles. It was found that the impressive separation of electron-hole pairs as well as presence of rGO sheets which act as a high speed charge transfer were responsible for increasing photocatalytic activity over the optimized photocatalyst under visible-light irradiation. A possible mechanism for the increased photocatalytic activity of the rGO/CaFe2O4/Ag3PO4 with a mass ratio of (1:3:9) composite was discussed in detail.
机译:通过水热和离子交换沉积方法合成了新的磁性可分离的CaFe2O4 / Ag3PO4,MgFe2O4 / Ag3PO4,MgFe2O4 / Ag3PO4,MgFe2O4 / Ag3PO4,Rgo / Cafe2O4 / Ag3PO4和Rgo / MgFe2O4 / Ag3PO4光催化剂。在可见光照射下,将这四种类型的光催化剂用于亚甲基蓝(Mb),甲基橙(Mo)和4-氯苯酚(4-Cp)的水溶液中的降解。优化的光催化剂,即质量比(1:3:9)复合材料的Rgo / Cafe2O4 / Ag3PO4不仅显示出Mb,Mo和4-Cp在其他合成的光催化剂中的可见光辐射下的最高光催化性能而且还表现出至少五个循环的高可重用性和稳定性。发现电子 - 空穴对的令人印象深刻的分离以及作为高速电荷转移的RGO片材的存在是负责在可见光照射下在优化的光催化剂上增加光催化活性。详细讨论了具有质量比(1:3:9)复合材料的rgo / cafe2o4 / ag3po4的增强光催化活性的可能机制。

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