化工学报 ›› 2019, Vol. 70 ›› Issue (4): 1436-1445.DOI: 10.11949/j.issn.0438-1157.20181346
于海斌1,2(),刘强1,周立坤2,陈赞2,罗超2,张贯艳1,乔利娜3,王建杰3
收稿日期:
2018-11-15
修回日期:
2019-02-27
出版日期:
2019-04-05
发布日期:
2019-04-05
通讯作者:
于海斌
作者简介:
于海斌(1970—),男,教授级高级工程师,<email>yuhaibin9227@163.com</email>
基金资助:
Haibin YU1,2(),Qiang LIU1,Likun ZHOU2,Zan CHEN2,Chao LUO2,Guanyan ZHANG1,Jianjie QIAO Lina WANG3
Received:
2018-11-15
Revised:
2019-02-27
Online:
2019-04-05
Published:
2019-04-05
Contact:
Haibin YU
摘要:
以商品化ZrO2为载体,采用等体积浸渍法制备MnO x /ZrO2催化剂,对目标污染物甲基橙溶液进行催化臭氧降解效果研究。比较不同焙烧温度(350、400、500和550℃)、不同MnO x 负载量(5%、10%、15%和18%)等制备条件对催化剂活性的影响,结果表明:在400℃,MnO x 负载量为15%时,催化剂对催化臭氧降解甲基橙溶液表现出最好的活性。反应进行60 min后,甲基橙溶液的脱色率达92.8%,较单独臭氧氧化提高了36.1%。催化剂15%MnO x /ZrO2(400℃)的酸碱使用范围(pH为2.7、6.5、8.7、10.8)实验表明:甲基橙溶液不同初始pH条件同样会影响催化剂的活性,且pH=2.7时表现出最好的催化效果,甲基橙脱色率可达95%。循环实验表明,15%MnO x /ZrO2(400℃)具有较好的稳定性,催化剂循环使用三次后,甲基橙溶液脱色率仍保持在85%以上,且活性组分的流失是降低催化剂活性的一个重要原因。
中图分类号:
于海斌, 刘强, 周立坤, 陈赞, 罗超, 张贯艳, 乔利娜, 王建杰. MnO x /ZrO2 催化剂制备及催化臭氧氧化降解甲基橙[J]. 化工学报, 2019, 70(4): 1436-1445.
Haibin YU, Qiang LIU, Likun ZHOU, Zan CHEN, Chao LUO, Guanyan ZHANG, Jianjie QIAO Lina WANG. Preparation of MnO x /ZrO2 catalyst and catalytic ozonation degradation of methylorange[J]. CIESC Journal, 2019, 70(4): 1436-1445.
Sample | S BET/(m2/g) | D p/nm | V micro/(m3/g) |
---|---|---|---|
ZrO2 support | 13.22 | 20.64 | 0.068 |
fresh 15%MnO x /ZrO2 (400℃) | 12.90 | 26.23 | 0.084 |
used 15%MnO x /ZrO2 (400℃) | 13.20 | 20.54 | 0.068 |
表1 载体与催化剂的物理吸附结果
Table 1 BET information of ZrO2 support, fresh and used 15%MnO x /ZrO2 (400℃) catalysts
Sample | S BET/(m2/g) | D p/nm | V micro/(m3/g) |
---|---|---|---|
ZrO2 support | 13.22 | 20.64 | 0.068 |
fresh 15%MnO x /ZrO2 (400℃) | 12.90 | 26.23 | 0.084 |
used 15%MnO x /ZrO2 (400℃) | 13.20 | 20.54 | 0.068 |
图6 焙烧温度对15%MnO x /ZrO2催化剂活性的影响
Fig.6 Effect of calcination temperature on catalytic activity of 15%MnO x /ZrO2 in ozonation(catalyst dosage=1.0 g/L, pH=6.5±0.05, ozone flow=0.6 mg/min, MO concentration=100 mg/L, temperature=25℃±1℃, volume=500 ml)
图7 MnO x 负载量对MnO x /ZrO2(400℃)催化剂活性的影响
Fig.7 Effect of MnO x load on catalytic activity of MnO x /ZrO2 (calcination at 400℃) in ozonation (catalyst dosage=1.0 g/L, pH=6.5±0.05, ozone flow=0.6 mg/min, MO concentration=100 mg/L, temperature=25℃±1℃, volume=500 ml)
图8 溶液初始pH对15%MnO x /ZrO2(400℃)催化降解甲基橙的影响
Fig.8 Effect of initial solution pH on decolorization of methyl orange in catalytic ozonation with 15%MnO x /ZrO2 (400℃) catalyst(catalyst dosage=1.0 g/L, ozone flow=0.6 mg/min, MO concentration=100 mg/L, temperature=25℃±1℃, volume=500 ml)
pH | Rate constant k/min-1 | R 2 |
---|---|---|
2.7 | 0.053 | 0.94 |
6.5 | 0.043 | 0.99 |
8.7 | 0.023 | 0.93 |
10.8 | 0.015 | 0.98 |
表2 不同pH条件下15%MnO x /ZrO2 (400℃)催化臭氧氧化降解甲基橙一级反应速率常数及相关系数
Table 2 Rate constant and correlation coefficients of methyl orange decolorization in different pH over 15%MnO x /ZrO2 (400℃) catalyst
pH | Rate constant k/min-1 | R 2 |
---|---|---|
2.7 | 0.053 | 0.94 |
6.5 | 0.043 | 0.99 |
8.7 | 0.023 | 0.93 |
10.8 | 0.015 | 0.98 |
图9 15%MnO x /ZrO2(400℃)作用下不同pH条件下甲基橙脱色一级反应动力学
Fig.9 First kinetic graph of methyl orange decolorization at different pH over 15%MnO x /ZrO2 (400℃) catalyst
System | Rate constant k/ min-1 | R 2 |
---|---|---|
15% MnO x /ZrO2 (400℃) adsorption | 0.006 | 0.93 |
O3 alone | 0.026 | 0.97 |
ZrO2+O3 | 0.029 | 0.93 |
15% MnO x /ZrO2 (400℃)+O3 | 0.046 | 0.96 |
表3 甲基橙溶液起始pH=2.7时反应60 min后不同体系下甲基橙脱色过程的一级反应速率常数及相关系数
Table 3 Rate constant and correlation coefficients of methyl orange decolorization process in different systems after 60 min reaction at pH=2.7
System | Rate constant k/ min-1 | R 2 |
---|---|---|
15% MnO x /ZrO2 (400℃) adsorption | 0.006 | 0.93 |
O3 alone | 0.026 | 0.97 |
ZrO2+O3 | 0.029 | 0.93 |
15% MnO x /ZrO2 (400℃)+O3 | 0.046 | 0.96 |
图11 15%MnOx/ZrO2(400℃)催化剂稳定性考察
Fig.11 Stability of 15%MnO x /ZrO2 (400℃) catalyst(catalyst dosage=1.0 g/L, pH=2.7, ozone flow=0.6 mg/min, MO concentration=100 mg/L, temperature=25℃±1℃, volume=500 ml)
Run times | Element content/(mg/L) | |
---|---|---|
Mn | Zr | |
1 | 2.60 | 0.29 |
3 | 0.76 | 7.67 |
表4 15% MnOx/ZrO2 (400℃)催化剂循环使用1次和3次后溶液中Mn、Zr元素的含量表征结果
Table 4 Loss of Mn and Zr element contents in reaction solution after 1st and 3rd runs over 15%MnO x /ZrO2 (400℃) catalyst
Run times | Element content/(mg/L) | |
---|---|---|
Mn | Zr | |
1 | 2.60 | 0.29 |
3 | 0.76 | 7.67 |
1 | 李丽华, 马明明, 任庆军, 等 . CeO2/三维石墨烯催化臭氧化降解刚果红[J]. 化工环保,2017, 37(3): 294-299. |
Li L H , Ma M M , Ren Q J , et al . Degradation of congo red by catalytic ozonation on CeO2/3D graphene[J]. Environ. Pro. Chem. Ind., 2017, 37(3): 294-299. | |
2 | 任南琪, 周显娇, 郭婉茜, 等 . 染料废水处理技术研究进展[J]. 化工学报, 2013, 64(1): 84-94. |
Ren N Q , Zhou X J , Guo W Q , et al . A review on treatment methods of dye wastewater[J]. CIESC Journal, 2013, 64(1): 84-94. | |
3 | Habiba U , Siddique T A , Lee J J L , et al . Adsorption of methyl orange by chitosan/polyvinyl alcohol/zeolite electrospun composite nanofibrous membrane[J]. Carbohydr. Polym., 2018, 191: 79-85. |
4 | 张轶, 从燕青, 孙培德 . 电絮凝处理甲基橙废水的实验及动力学模型[J]. 化工学报, 2009, 60(9): 2339-2345. |
Zhang Y , Cong Y Q , Sun P D . Experiment and kinetic model for methyl orange wastewater removal by electroagulation[J]. CIESC Journal, 2009, 60(9): 2339-2345. | |
5 | Li P , Liu Z P , Wang X G , et al . Enhanced decolorization of methyl orange in aqueous solution using ironecarbon micro-electrolysis activation of sodium persulfate[J]. Chemosphere, 2017, 180: 100-107. |
6 | 张婷 . 高级氧化技术的研究进展[J]. 广州化工, 2011, 39(14): 36-39. |
Zhang T . Research progress of advanced oxidation technologies[J]. Guangzhou Chemical Industry, 2011, 39(14): 36-39. | |
7 | 刘爱萍 . 高级氧化技术在水处理中的研究与展望[J]. 科技致富向导, 2011, (3): 187-204. |
Liu A P . Research and development of advanced oxidation processes in water treatment[J]. Guide of Sci-tech Magazine, 2011, (3): 187-204. | |
8 | 任百祥, 范晶莹, 杨春维 . 磁性活性炭催化氧化降解水中甲基橙[J]. 化工环保, 2015, 35(4): 409-413. |
Ren B X , Fan J Y , Yang C W . Degradation of methyl orange in water by catalytic ozone oxidation with magnetic activated carbon[J]. Environ. Pro. Chem. Ind., 2015, 35(4): 409-413. | |
9 | Tang Y M , Pan Z Q , Li L S . pH-insusceptible cobalt-manganese immobilizing mesoporous siliceous MCM-41 catalyst for ozonation of dimethyl phthalate[J]. J. Colloid Interface Sci., 2017, 508: 196-202. |
10 | Tong S P , Shi R , Zhang H , et al . Catalytic performance of Fe3O4-CoO/Al2O3 catalyst in ozonation of 2-(2, 4-dichlorophenoxy) propionic acid, nitrobenzene and oxalic acid in water[J]. J. Environ. Sci., 2010, 22(10): 1623-1628. |
11 | 潘璐阳, 王树涛, 张兰河, 等 . 掺杂型纳米MnO2/Al2O3催化剂的制备及催化臭氧氧化处理驱油污水二级出水[J]. 硅酸盐通报, 2015, 34(8): 2260-2266. |
Pan L Y , Wang S T , Zhang L H , et al . Preparation of dope nano-MnO2/Al2O3 catalyst and catalytic ozonation of secondary effluent of oil extraction wastewater for advanced treatment[J]. Bull. Chin. Ceramic Soc., 2015, 34(8): 2260-2266. | |
12 | Asma A , Monia G , Javier R T F , et al . Nitrobenzene degradation in aqueous solution using ozone/cobalt supported activated carbon coupling process: a kinetic approach[J]. Sep. Purif. Technol., 2017, 184: 308-318. |
13 | Zhang J H , Zhang Q , Shao X Z , et al . Properties of magnetic carbon nanomaterials and application in removal organic dyes[J]. Chemosphere, 2018, 207: 377-384. |
14 | 何志桥, 姜哲, 姜理英, 等 . 多壁碳纳米管的氨表面改性及其臭氧催化降解草酸[J]. 化工学报, 2012, 63(8): 2551-2556. |
He Z Q , Jiang Z , Jiang L Y , et al . Surface modification of multi-walled carbon nanotubes by ammonia and catalytic degradation of oxalic by ozonation[J]. CIESC Journal, 2012, 63(8): 2551-2556. | |
15 | Liu X M , Lu G Q , Yan Z F . Synthesis and stabilization of nanocrystalline zirconia with MSU mesostructure[J]. J. Phys. Chem. B, 2004, 108: 15523-15528. |
16 | Su C L , Li J R , He D H , et al . Synthesis of isobutene from synthesis gas over nanosize zirconia catalysts [J]. Appl. Catal., A, 2000, 202(1): 81-89. |
17 | Michael W , David M , Antonelli J , et al . Synthesis and characterization of phosphated mesoporous zirconium oxide[J]. Nanostruct. Mater., 1997, 9(16): 165-168. |
18 | Song Y Q , Liu H M , He D H . Effects of hydrothermal conditions of ZrO2 on catalyst properties and catalytic performances of Ni/ZrO2 in the partial oxidation of methane[J]. Energy Fuels, 2010, 24(5): 2817-2824. |
19 | Benito M , Padilla R , Rodríguez L , et al . Zirconia supported catalysts for bioethanol steam reforming: effect of active phase and zirconia structure[J]. J. Power Sources, 2007, 169(1): 167-176. |
20 | 贡湘君, 叶飞, 刘荣, 等 . 四方相氧化锆基MnO x -CeO2负载型催化剂在低温NH3-SCR中的应用[J]. 功能材料, 2015, 10(46): 10090-10094. |
Gong X J , Ye F , Liu R , et al . Low-temperature selective catalytic reduction with NH3 over MnOx-CeO2 catalysts supported on nano tetragonal-phase zirconia[J]. Journal of Functional Materials, 2015, 10(46): 10090-10094. | |
21 | 彭爱国, 贺周初, 肖伟, 等 . 化学二氧化锰的研究进展[J].无机盐工业, 2011, 43(3): 8-11. |
Peng A G , He Z C , Xiao W , et al . Research progress of chemical manganese dioxide[J]. Inorganic Chemicals Industry, 2011, 43(3): 8-11. | |
22 | 袁建梅, 杨德敏 . 非均相催化臭氧氧化深度处理钻井废水的效能研究[J]. 工业水处理, 2014, 34(8): 36-40. |
Yuan J M , Yang D M . Efficiency research on the advanced treatment of drilling wastewater by heterogeneous catalytic ozonation[J]. Industrial Water Treatment, 2014, 34(8): 36-40. | |
23 | 郭春芳 . 催化臭氧氧化工艺深度处理印染废水[J]. 工业水处理, 2013, 33(7): 43-46. |
Guo C F . Study on the advanced treatment of printing & dyeing wastewater by catalysis ozone oxidation process[J]. Industrial Water Treatment, 2013, 33(7): 43-46. | |
24 | Andreozzi R , Insola A , Caprio V , et al . The use of manganese dioxide as a heterogeneous catalyst for oxalic acid ozonation in aqueous solution[J]. Appl. Catal., A, 1996, 138(1): 75-81. |
25 | Tong S P , Liu W P , Leng W H , et al . Characteristics of MnO2 catalytic ozonation of sulfosalicylic acid and propionic acid in water[J]. Chemosphere, 2003, 50(10): 1359-1364. |
26 | Mullet M , Fievet P , Szymczyk A , et al . A simple and accurate determination of the point of zero charge of ceramic membranes[J]. Desalination, 1999, 121: 41-48. |
27 | Gayle N , Rob H , Mary D . Granular activated carbon: importance of surface properties in the adsorption of naturally occurring organics[J]. Colloids Surf., A, 1993, 78: 65-71. |
28 | 张永利, 韦朝海, 史册, 等 . Cu-Fe-Ru-La/γ-Al2O3湿式氧化催化剂的制备、表征及机理[J]. 人工晶体学报, 2013, 42(7): 1457-1469. |
Zhang Y L , Wei C H , Shi C , et al . Preparation, characterization and mechanism of Cu-Fe-Ru-La/γ-Al2O3 catalysts for wastewater wet oxidation[J]. J. Synthetic Cryst., 2013, 42(7): 1457-1469. | |
29 | 刘昳 . 钛催化剂光催化降冰片二烯异构研究[D]. 天津: 天津大学, 2009. |
Liu Y . Study on photocatalytic isomerization of norbornadiene with titanium catalyst[D]. Tianjin: Tianjin University, 2009. | |
30 | 赵基钢, 沈本贤, 肖卫国 . 薄片状TS-1分子筛催化剂及其在丙烯环氧化反应中的催化性能[J]. 石化技术与应用, 2010, 28(1): 1-4. |
Zhao J G , Shen B X , Xiao W G . Research of lamellar TS-1 molecular sieve catalyst and their catalytic performance in propylene oxidation[J]. Petrochemical Technology & Application, 2010, 28(1): 1-4. | |
31 | Huang H B , Ye X G , Huang W J , et al . Ozone-catalyticoxidation of gaseous benzene over MnO2/ZSM-5 at ambient temperature: catalytic deactivationand its suppression[J]. Chem. Eng. J., 2015, 264: 24-31. |
32 | Shahzad A , Quan X , Chen S , et al . Synthesis of manganese incorporated hierarchical mesoporous silica nanosphere with fibrous morphology by facile one-pot approach for efficient catalytic ozonation[J]. J. Hazard. Mater., 2016, 318: 308-318. |
33 | 柯武, 张永丽, 张静, 等 . Fe-MnO x 催化臭氧氧化甲基橙[J]. 四川大学学报, 2016, 48(1): 221-226. |
Ke W , Zhang Y L , Zhang J , et al . Ozonation of methyl orange catalyzed by Fe-MnO x [J]. J. Sichuan Univ., 2016, 48(1): 221-226. | |
34 | 王伟平, 陈凌燕, 杨水金 . H3PW(12)O(40)/ZrO2催化合成环己酮乙二醇缩酮[J]. 湖北师范大学学报(自然科学版), 2011, 31(1): 84-88. |
Wang W P , Chen L Y , Yang S J . Synthesis of cyclohexanone glycol ketal catalyzed by H3PW(12)O(40)/ZrO2 [J]. Journal of Hubei Normal Univerity(Nature Science), 2011, 31(1): 84-88. | |
35 | Abidin A Z , Bakar N H H A , Ng E P , et al . Rapid degradation of methyl orange by Ag doped zeolite X in the presence of borohydride[J]. Journal of Taibah University for Science, 2017, 11: 1070-1079. |
36 | Gholamreza M , Maryam M . Degradation and biodegradability improvement of the reactive red 198 azo dye using catalytic ozonation with MgO nanocrystals[J]. Chem. Eng. J., 2009, 152: 1-7. |
37 | Nidhi G , Bonamail P . Core-shell structure of metal loaded CdS-SiO2 hybrid nanocomposites for complete photomineralization of methyl orange by visible light[J]. J. Mol. Catal. A: Chem., 2014, 391: 158-167. |
38 | Xing S T , Hu C , Qu J H , et al . Characterization and reactivity of MnO x supported on mesoporous zirconia for herbicide 2, 4-D mineralization with ozone[J]. Environ. Sci. Technol., 2008, 42: 3363-3368. |
39 | Sui M H , Xing S C , Sheng L , et al . Heterogeneous catalytic ozonation of ciprofloxacin in water with carbon nanotube supported manganese oxides as catalyst[J]. J. Hazard. Mater., 2012, 227/228: 227-236. |
40 | Faheem N , Cao H B , Xie Y B , et al . Selection of active phase of MnO2 for catalytic ozonation of 4-nitrophenol[J]. Chemosphere, 2017, 168: 1457-1466. |
[1] | 李艺彤, 郭航, 陈浩, 叶芳. 催化剂非均匀分布的质子交换膜燃料电池操作条件研究[J]. 化工学报, 2023, 74(9): 3831-3840. |
[2] | 陈杰, 林永胜, 肖恺, 杨臣, 邱挺. 胆碱基碱性离子液体催化合成仲丁醇性能研究[J]. 化工学报, 2023, 74(9): 3716-3730. |
[3] | 杨学金, 杨金涛, 宁平, 王访, 宋晓双, 贾丽娟, 冯嘉予. 剧毒气体PH3的干法净化技术研究进展[J]. 化工学报, 2023, 74(9): 3742-3755. |
[4] | 杨菲菲, 赵世熙, 周维, 倪中海. Sn掺杂的In2O3催化CO2选择性加氢制甲醇[J]. 化工学报, 2023, 74(8): 3366-3374. |
[5] | 李凯旋, 谭伟, 张曼玉, 徐志豪, 王旭裕, 纪红兵. 富含零价钴活性位点的钴氮碳/活性炭设计及甲醛催化氧化应用研究[J]. 化工学报, 2023, 74(8): 3342-3352. |
[6] | 杨欣, 彭啸, 薛凯茹, 苏梦威, 吴燕. 分子印迹-TiO2光电催化降解增溶PHE废水性能研究[J]. 化工学报, 2023, 74(8): 3564-3571. |
[7] | 余娅洁, 李静茹, 周树锋, 李清彪, 詹国武. 基于天然生物模板构建纳米材料及集成催化剂研究进展[J]. 化工学报, 2023, 74(7): 2735-2752. |
[8] | 涂玉明, 邵高燕, 陈健杰, 刘凤, 田世超, 周智勇, 任钟旗. 钙基催化剂的设计合成及应用研究进展[J]. 化工学报, 2023, 74(7): 2717-2734. |
[9] | 张琦钰, 高利军, 苏宇航, 马晓博, 王翊丞, 张亚婷, 胡超. 碳基催化材料在电化学还原二氧化碳中的研究进展[J]. 化工学报, 2023, 74(7): 2753-2772. |
[10] | 李盼, 马俊洋, 陈志豪, 王丽, 郭耘. Ru/α-MnO2催化剂形貌对NH3-SCO反应性能的影响[J]. 化工学报, 2023, 74(7): 2908-2918. |
[11] | 张谭, 刘光, 李晋平, 孙予罕. Ru基氮还原电催化剂性能调控策略[J]. 化工学报, 2023, 74(6): 2264-2280. |
[12] | 王辰, 史秀锋, 武鲜凤, 魏方佳, 张昊虹, 车寅, 吴旭. 氧化还原法制备Mn3O4催化剂及其甲苯催化氧化性能与机理研究[J]. 化工学报, 2023, 74(6): 2447-2457. |
[13] | 李勇, 高佳琦, 杜超, 赵亚丽, 李伯琼, 申倩倩, 贾虎生, 薛晋波. Ni@C@TiO2核壳双重异质结的构筑及光热催化分解水产氢[J]. 化工学报, 2023, 74(6): 2458-2467. |
[14] | 周继鹏, 何文军, 李涛. 异形催化剂上乙烯催化氧化失活动力学反应工程计算[J]. 化工学报, 2023, 74(6): 2416-2426. |
[15] | 张希庆, 王琰婷, 徐彦红, 常淑玲, 孙婷婷, 薛定, 张立红. Mg量影响的纳米片负载Pt-In催化异丁烷脱氢性能[J]. 化工学报, 2023, 74(6): 2427-2435. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||