CoFe2O4/TiO2/鳞片石墨粒子电极光电催化降解罗丹明B

周丹, 余健, 唐浩, 任文辉. CoFe2O4/TiO2/鳞片石墨粒子电极光电催化降解罗丹明B[J]. 环境工程学报, 2016, 10(10): 5503-5510. doi: 10.12030/j.cjee.201505077
引用本文: 周丹, 余健, 唐浩, 任文辉. CoFe2O4/TiO2/鳞片石墨粒子电极光电催化降解罗丹明B[J]. 环境工程学报, 2016, 10(10): 5503-5510. doi: 10.12030/j.cjee.201505077
ZHOU Dan, YU Jian, TANG Hao, REN Wenhui. Photoelectrocatalytic degradation of rhodamine B by CoFe2O4/TiO2/flake graphite particle electrode[J]. Chinese Journal of Environmental Engineering, 2016, 10(10): 5503-5510. doi: 10.12030/j.cjee.201505077
Citation: ZHOU Dan, YU Jian, TANG Hao, REN Wenhui. Photoelectrocatalytic degradation of rhodamine B by CoFe2O4/TiO2/flake graphite particle electrode[J]. Chinese Journal of Environmental Engineering, 2016, 10(10): 5503-5510. doi: 10.12030/j.cjee.201505077

CoFe2O4/TiO2/鳞片石墨粒子电极光电催化降解罗丹明B

  • 基金项目:

    国家水体污染控制与治理科技重大专项(2009ZX07423-004)

  • 中图分类号: X703

Photoelectrocatalytic degradation of rhodamine B by CoFe2O4/TiO2/flake graphite particle electrode

  • Fund Project:
  • 摘要: 采用溶胶-凝胶法制成CoFe2O4/TiO2/鳞片石墨粒子电极,用电子扫描电镜(SEM)、X-射线衍射仪(XRD)和X-射线光电子能谱仪(XPS)对该粒子电极的形貌、晶体结构和元素组成进行分析,并将其应用于罗丹明B(RhB)的光电催化实验;考察电解质浓度、粒子电极投加量、电压、pH和初始浓度等因素对罗丹明B降解的影响,并研究了罗丹明B的光电催化降解动力学。结果表明:光催化和电化学联合作用时,产生协同作用;在电解质Na2SO4溶液浓度为0.03 mol·L-1,粒子电极投加量为6.67 g·L-1,外加电压为8 V,pH为3,反应时间为45 min时,浓度为15 mg·L-1的罗丹明B的去除率达到97.6%;罗丹明B的光电催化降解反应符合假一级动力学模型。
  • 加载中
  • [1] SAIEN J.,ASGARI M.,SOLEYMANI A.R.,et al.Photocatalytic decomposition of direct red 16 and kinetics analysis in a conic body packed bed reactor with nanostructure titania coated Raschig rings.Chemical Engineering Journal,2009,151(1/2/3):295-301
    [2] PELAEZ M.,NOLAN N.T.,PILLAI S.C.,et al.A review on the visible light active titanium dioxide photocatalysts for environmental applications.Applied Catalysis B:Environmental,2012,125(33):331-349
    [3] CHAI Yuchao,LIN Lin,ZHANG Ke,et al.Efficient visible-light photocatalysts from Gd-La co-doped TiO2 nanotubes.Ceramics International,2014,40(2):2691-2696
    [4] CONG Yanqing,LI Zhe,ZHANG Yi,et al.Synthesis of α-Fe2O3/TiO2 nanotube arrays for photoelectro-Fenton degradation of phenol.Chemical Engineering Journal,2012,191:356-363
    [5] ZHU Zhengru,LI Xinyong,ZHAO Qidong,et al.Surface photovoltage properties and photocatalytic activities of nanocrystalline CoFe2O4 particles with porous superstructure fabricated by a modified chemical co-precipitation method.Journal of Nanoparticle Research,2011,13(5):2147-2155
    [6] MOURÃO H.A.J.L.,MALAGUTTI A.R.,RIBEIRO C.Synthesis of TiO2-coated CoFe2O4 photocatalysts applied to the photodegradation of atrazine and rhodamine B in water.Applied Catalysis A:General,2010,382(2):284-292
    [7] SATHISHKUMAR P.,MANGALARAJA R.V.,ANANDAN S.,et al.CoFe2O4/TiO2 nanocatalysts for the photocatalytic degradation of Reactive Red 120 in aqueous solutions in the presence and absence of electron acceptors.Chemical Engineering Journal,2013,220(11):302-310
    [8] ZHANG Yanzong,XIONG Xiaoyan,HAN Yue,et al.Photoelectrocatalytic degradation of recalcitrant organic pollutants using TiO2 film electrodes:An overview.Chemosphere,2012,88(2):145-154
    [9] ZANONI M.V.B.,SENE J.J.,ANDERSON M.A.Photoelectrocatalytic degradation of Remazol Brilliant Orange 3R on titanium dioxide thin-film electrodes.Journal of Photochemistry and Photobiology A:Chemistry,2003,157(1):55-63
    [10] OLYA M.E.,PIRKARAMI A.,SOLEIMANI M.,et al.Photoelectrocatalytic degradation of acid dye using Ni-TiO2 with the energy supplied by solar cell:Mechanism and economical studies.Journal of Environmental Management,2013,121(7):210-219
    [11] OJANI R.,RAOOF J.B.,KHANMOHAMMADI A.,et al.Photoelectrocatalytic degradation of 3-nitrophenol at surface of Ti/TiO2 electrode.Journal of Solid State Electrochemistry,2013,17(1):63-68
    [12] WANG Can,HUANG Yaokun,ZHAO Qing,et al.Treatment of secondary effluent using a three-dimensional electrode system:COD removal,biotoxicity assessment,and disinfection effects.Chemical Engineering Journal,2014,243(5):1-6
    [13] 孙玲芳,喻泽斌,彭振波,等.可见光助三维电极/电Fenton处理罗丹明B废水的研究.环境科学学报,2014,34(7):1705-1715 SUN Lingfang,YU Zebin,PENG Zhenbo,et al.Degradation of Rhodamine B by visible irradiation-assisted three-dimensional electro-Fenton system.Acta Scientiae Circumstantiae,2014,34(7):1705-1715(in Chinese)
    [14] LIU Haijin,LIU Guoguang,FAN Jing,et al.Photoelectrocatalytic degradation of 4,4'-dibromobiphenyl in aqueous solution on TiO2 and doped TiO2 nanotube arrays.Chemosphere,2011,82(1):43-47
    [15] 张峰,李文奇,冯传平,等.光催化电化学联合降解水中苯酚的研究.环境工程学报,2011,5(10):2161-2166 ZHANG Feng,LI Wenqi,FENG Chuanping,et al.Study on synergetic degradation of phenol by independent electrochemical and photocatalytic processes.Chinese Journal of Environmental Engineering,2011,5(10):2161-2166(in Chinese)
    [16] OLYA M.E.,PIRKARAMI A.Cost-effective photoelectrocatalytic treatment of dyes in a batch reactor equipped with solar cells.Separation and Purification Technology,2013,118(6):557-566
    [17] OLYA M.E.,PIRKARAMI A.,SOLEIMANI M.,et al.Photoelectrocatalytic degradation of acid dye using Ni-TiO2 with the energy supplied by solar cell:Mechanism and economical studies.Journal of Environmental Management,2013,121(7):210-219
    [18] OJANI R.,KHANMOHAMMADI A.,RAOOF J.B.Photoelectrocatalytic degradation of p-hydroxybenzoic acid at the surface of a titanium/titanium dioxide nanotube array electrode using electrochemical monitoring.Materials Science in Semiconductor Processing,2015,31:651-657
    [19] 王婧,孟庆函,曹兵.三维电极电催化氧化处理邻氯苯胺废水的研究.环境科学与技术,2012,35(7):86-89 WANG Jing,MENG Qinghan,CAO Bing.Electrochemical degradation of o-chloroaniline with three-dimensional electrodes.Environmental Science & Technology,2012,35(7):86-89(in Chinese)
    [20] YU Xiujuan,ZHANG Yuhang,CHENG Xiuwen.Preparation and photoelectrochemical performance of expanded graphite/TiO2 composite.Electrochimica Acta,2014,137(8):668-675
    [21] GUO Yupeng,ZHAO Jingzhe,ZHANG Hui,et al.Use of rice husk-based porous carbon for adsorption of Rhodamine B from aqueous solutions.Dyes and Pigments,2005,66(2):123-128
    [22] GARCIA-SEGURA S.,BRILLAS E.Advances in solar photoelectro-Fenton:Decolorization and mineralization of the Direct Yellow 4 diazo dye using an autonomous solar pre-pilot plant.Electrochimica Acta,2014,140(27):384-395
    [23] HU Chun,YU J.C.,HAO Zhengping,et al.Photocatalytic degradation of triazine-containing azo dyes in aqueous TiO2 suspensions.Applied Catalysis B:Environmental,2003,42(1):47-55
    [24] CARDOSO J.C.,LIZIER T.M.,ZANONI M.V.B.Highly ordered TiO2 nanotube arrays and photoelectrocatalytic oxidation of aromatic amine.Applied Catalysis B:Environmental,2010,99 (1):96-102
  • 加载中
计量
  • 文章访问数:  1595
  • HTML全文浏览数:  1193
  • PDF下载数:  388
  • 施引文献:  0
出版历程
  • 收稿日期:  2015-07-27
  • 刊出日期:  2016-10-20

CoFe2O4/TiO2/鳞片石墨粒子电极光电催化降解罗丹明B

  • 1. 湖南大学土木工程学院, 长沙 410082
基金项目:

国家水体污染控制与治理科技重大专项(2009ZX07423-004)

摘要: 采用溶胶-凝胶法制成CoFe2O4/TiO2/鳞片石墨粒子电极,用电子扫描电镜(SEM)、X-射线衍射仪(XRD)和X-射线光电子能谱仪(XPS)对该粒子电极的形貌、晶体结构和元素组成进行分析,并将其应用于罗丹明B(RhB)的光电催化实验;考察电解质浓度、粒子电极投加量、电压、pH和初始浓度等因素对罗丹明B降解的影响,并研究了罗丹明B的光电催化降解动力学。结果表明:光催化和电化学联合作用时,产生协同作用;在电解质Na2SO4溶液浓度为0.03 mol·L-1,粒子电极投加量为6.67 g·L-1,外加电压为8 V,pH为3,反应时间为45 min时,浓度为15 mg·L-1的罗丹明B的去除率达到97.6%;罗丹明B的光电催化降解反应符合假一级动力学模型。

English Abstract

参考文献 (24)

目录

/

返回文章
返回