Citation: Junxiu Wang, Zhenzong Zhang, Xi Wang, Yi Shen, Yongfu Guo, Po Keung Wong, Renbi Bai. Synthesis of novel p-n heterojunction m-Bi2O4/BiOCl nanocomposite with excellent photocatalytic activity through ion-etching method[J]. Chinese Journal of Catalysis, 2018, 39(11): 1792-1803. doi: 10.1016/S1872-2067(18)63142-0
离子刻蚀法制备具有高效催化性能的m-Bi2O4/BiOCl p-n异质结催化剂
本文通过离子刻蚀法制备具有p-n异质结的m-Bi2O4/BiOCl复合催化剂,通过调节HCl的加入量制得不同比例的催化剂,并考察了其在可见光下催化降解MO(甲基橙)的性能.结果表明,m-Bi2O4/BiOCl复合催化剂在可见光下表现出优异的光催化降解MO和四环素的性能,反应10内min可降解95%的MO,反应150min内四环素的降解率为85.5%;该复合催化剂对MO和四环素的光降解效率分别是纯BiOCl的52.3和4.9倍.活性自由基捕获实验表明,空穴在光催化降解过程中起最主要的作用,其次是超氧自由基,羟基自由基对降解反应也起到一定的作用.
采用XRD,SEM,EDS,TEM,SAED,FT-IR,Raman,XPS,BET,UV-vis和光电流等表征方法分析了催化剂的结构、形貌、化学组成、元素价态、孔结构、带隙能、光学性质和载流子复合效率.结果表明,与BiOCl的斜四方体相比,m-Bi2O4/BiOCl复合催化剂呈现纳米片状结构,氯离子进入晶格的内部,颜色也由BiOCl原来的深褐色变为黄色.m-Bi2O4/BiOCl为介孔结构,比表面积为112.90m2/g,其吸收波长红移,由紫外光扩展至可见光区域,带隙能也由3.2降低为1.87eV,能带弯曲形成p-n异质结,提高了电子-空穴的转移效率,抑制其复合;m-Bi2O4/BiOCl的光电流密度高于m-Bi2O4和BiOCl,电子-空穴的分离效率更高,因而其催化性能更优越.
English
Synthesis of novel p-n heterojunction m-Bi2O4/BiOCl nanocomposite with excellent photocatalytic activity through ion-etching method
-
Key words:
- Dibismuth tetroxide
- / Photocatalysis
- / Methylene orange
- / Tetracycline
- / Degradation mechanism
-
-
[1] H. Sopha, V. Podzemna, L. Hromadko, J. M. Macak, Electrochem. Commun., 2017, 84, 6-9.
-
[2] Q. Hao, R. Wang, H. Lu, C. A. Xie, W. Ao, D. Chen, C. Ma, W. Yao, Y. Zhu, Appl. Catal. B, 2017, 219, 63-72.
-
[3] J. Wang, J. Li, H. Li, S. Duan, S. Meng, X. Fu, S. Chen, Chem. Eng. J., 2017, 330, 433-441.
-
[4] X. Tian, T. Xu, Y. Wang, S. Meng, RSC Adv., 2017, 7, 36705-36713.
-
[5] H. Li, Z. Yang, J. Zhang, Y. Huang, H. Ji, Y. Tong, Appl. Surf. Sci., 2017, 423, 1188-1197.
-
[6] H. Huang, R. Cao, S. Yu, K. Xu, W. Hao, Y. Wang, F. Dong, T. Zhang, Y. Zhang, Appl. Catal. B, 2017, 219, 526-537.
-
[7] X. Xiao, R. Hao, M. Liang, X. Zuo, J. Nan, L. Li, W. Zhang, J. Hazard. Mater., 2012, 233-234, 122-130.
-
[8] L. W. Shan, G. I. Wang, L. Z. Liu, Z. Wu, J. Mol. Catal. A, 2015, 406, 145-151.
-
[9] J. Li, S. Sun, C. Qian, L. He, K. K. Chen, T. Zhang, Z. Chen, M. Ye, Chem. Eng. J., 2016, 297, 139-147.
-
[10] C. Lv, J. Sun, G. Chen, Y. Zhou, D. Li, Z. Wang, B. Zhao, Appl. Catal. B, 2017, 208, 14-21.
-
[11] J. Sun, X. Li, Q. Zhao, M.O. Tadé, S. Liu, Appl. Catal. B, 2017, 219, 259-268.
-
[12] H. Wang, Y. Sun, G. Jiang, Y. Zhang, H. Huang, Z. Wu, S. C. Lee, F. Dong, Environ. Sci. Technol., 2018, 52, 1479-1487.
-
[13] H. Wang, W. Zhang, X. Li, J. Li, W. Cen, Q. Li, F. Dong, Appl. Catal. B, 2018, 225, 218-227.
-
[14] X. A. Dong, W. Zhang, Y. Sun, J. Li, W. Cen, Z. Cui, H. Huang, F. Dong, J. Catal., 2018, 357, 41-50.
-
[15] W. Zhang, X. Liu, X.A. Dong, F. Dong, Y. Zhang, Chin. J. Catal., 2017, 38, 2030-2038.
-
[16] X. Ma, Z. Ma, T. Liao, X. Liu, Y. Zhang, L. Li, W. Li, B. Hou, J. Alloys Compd., 2017, 702, 68-74.
-
[17] L. Song, Y. Pang, Y. Zheng, C. Chen, L. Ge, J. Alloys Compd., 2017, 710, 375-382.
-
[18] L. Zhang, C. G. Niu, G. X. Xie, X. J. Wen, X. G. Zhang, G. M. Zeng, ACS Sustain. Chem. Eng., 2017, 5, 4619-4629.
-
[19] M. Li, Y. Zhang, X. Li, S. Yu, X. Du, Y. Guo, H. Huang, J. Colloid Interface Sci., 2017, 508, 174-183.
-
[20] H. Huang, K. Xiao, T. Zhang, F. Dong, Y. Zhang, Appl. Catal. B, 2017, 203, 879-888.
-
[21] X. Meng, Z. Zhang, J. Mol. Catal. A, 2016, 423, 533-549.
-
[22] B. Li, L. Shao, B. Zhang, R. Wang, M. Zhu, X. Gu, J. Colloid Interface Sci., 2017, 505, 653-663.
-
[23] Y. Mi, L. Wen, Z. Wang, D. Cao, R. Xu, Y. Fang, Y. Zhou, Y. Lei, Nano Energy, 2016, 30, 109-117.
-
[24] S. Fang, C. Ding, Q. Liang, Z. Li, S. Xu, Y. Peng, D. Lu, J. Alloys Compd., 2016, 684, 230-236.
-
[25] Y. Hu, Z. Jia, R. Lv, C. Fan, H. Zhang, Mater. Res. Bull., 2017, 94, 222-230.
-
[26] M. Sun, Q. Zhao, C. Du, Z. Liu, RSC Adv., 2015, 5, 22740-22752.
-
[27] V. C. Ferreira, M. C. Neves, A. R. Hillman, O. C. Monteiro, RSC Adv., 2016, 6, 77329-77339.
-
[28] L. Yu, X. Zhang, G. Li, Y. Cao, Y. Shao, D. Li, Appl. Catal. B, 2016, 187, 301-309.
-
[29] L. Song, Y. Pang, Y. Zheng, L. Ge, Appl. Phys. A, 2017, 123, 1-10.
-
[30] X. Chang, G. Yu, J. Huang, Z. Li, S. Zhu, P. Yu, C. Cheng, S. Deng, G. Ji, Catal. Today, 2010, 153, 193-199.
-
[31] L. Hao, H. Huang, Y. Guo, X. Du, Y. Zhang, Appl. Surf. Sci., 2017, 420, 303-312.
-
[32] H. Y. Wang, Z. S. Liu, L.T. Guo, H. L. Fan, X. Y. Tao, Mater. Sci. Semicond. Process., 2018, 77, 8-15.
-
[33] W. Wang, X. Chen, G. Liu, Z. Shen, D. Xia, P. K. Wong, J. C. Yu, Appl. Catal. B, 2015, 176-177, 444-453.
-
[34] J. Wang, K. Chen, Y. Shen, X. Wang, Y. Guo, X. Zhou, R. Bai, Res. Chem. Intermed., 2018, 44, 3061-3079.
-
[35] D. Xia, W. Wang, R. Yin, Z. Jiang, T. An, G. Li, H. Zhao, P. K. Wong, Appl. Catal. B, 2017, 214, 23-33.
-
[36] D. Xia, I. M. C. Lo, Water Res., 2016, 100, 393-404.
-
[37] F. Mian, G. Bottaro, M. Rancan, L. Pezzato, V. Gombac, P. Fornasiero, L. Armelao, ACS Omega, 2017, 2, 6298-6308.
-
[38] Y. Huang, W. Fan, B. Long, H. Li, F. Zhao, Z. Liu, Y. Tong, H. Ji, Appl. Catal. B, 2016, 185, 68-76.
-
[39] A. Hameed, M. Aslam, I. M. I. Ismail, N. Salah, P. Fornasiero, Appl. Catal. B, 2015, 163, 444-451.
-
[40] M. Sun, S. Li, T. Yan, P. Ji, X. Zhao, K. Yuan, D. Wei, B. Du, J. Hazard. Mater., 2017, 333, 169-178.
-
[41] S. Y. Chai, Y. J. Kim, M. H. Jung, A. K. Chakraborty, D. Jung, W. I. Lee, J. Catal., 2009, 262, 144-149.
-
[42] D. Kim, D. Jung, Chem. Phys. Lett., 2017, 674, 130-135.
-
[43] H. Huang, S. Tu, C. Zeng, T. Zhang, A. H. Reshak, Y. Zhang, Angew. Chem. Int. Ed., 2017, 56, 11860-11864.
-
[44] X. Zhang, T. Guo, X. Wang, Y. Wang, C. Fan, H. Zhang, Appl. Catal. B, 2014, 150-151, 486-495.
-
[45] X. Yan, X. Zhu, R. Li, W. Chen, J. Hazard. Mater., 2016, 303, 1-9.
-
[46] H. Chen, X. Wang, W. Bi, Y. Wu, W. Dong, J. Colloid Interface Sci., 2017, 502, 89-99.
-
[47] K. Li, Y. Liang, J. Yang, Q. Gao, Y. Zhu, S. Liu, R. Xu, X. Wu, J. Alloys Compd., 2017, 695, 238-249.
-
[48] G. He, C. Xing, X. Xiao, R. Hu, X. Zuo, J. Nan, Appl. Catal. B, 2015, 170-171, 1-9.
-
[49] F. T. Li, Q. Wang, X. J. Wang, B. Li, Y. J. Hao, R. H. Liu, D. S. Zhao, Appl. Catal. B, 2014, 150-151, 574-584.
-
[50] H. Y. Wang, Z. S. Liu, Y. L. Zhao, J. N. Niu, P. Z. Feng, Mater. Res. Bull., 2017, 89, 253-262.
-
[51] H. Lu, L. Xu, B. Wei, M. Zhang, H. Gao, W. Sun, Appl. Surf. Sci., 2014, 303, 360-366.
-
[52] A. Biswas, R. Das, C. Dey, R. Banerjee, P. Poddar, Cryst. Growth Des., 2013, 14, 236-239.
-
[53] Y. Na, Y. I. Kim, D. W. Cho, D. Pradhan, Y. Sohn, Mater. Sci. Semicond. Process., 2014, 27, 181-190.
-
[54] Y. Tian, C. F. Guo, Y. Guo, Q. Wang, Q. Liu, Appl. Surf. Sci., 2012, 258, 1949-1954.
-
[55] F. Nekouei, S. Nekouei, J. Alloys Compd., 2017, 701, 950-966.
-
[56] C. Yang, F. Li, T. Li, W. Cao, J. Mol. Catal. A, 2016, 418-419, 132-137.
-
[57] C. Cao, L. Xiao, C. Chen, Q. Cao, Appl. Surf. Sci., 2015, 357, 1171-1179.
-
[58] F. Dong, Y. Sun, M. Fu, Z. Wu, S.C. Lee, J. Hazard. Mater., 2012, 219-220, 26-34.
-
[59] L. Chen, R. Huang, S. F. Yin, S. L. Luo, C. T. Au, Chem. Eng. J., 2012, 193-194, 123-130.
-
[60] X. Li, C. Zhang, C. Hu, L. Xu, Q. Hu, S. Duo, W. Li, Y. Kang, J. Cluster Sci., 2017, 28, 2409-2418.
-
[61] P. Cui, J. Wang, Z. Wang, J. Chen, X. Xing, L. Wang, R. Yu, Nano Res., 2016, 9, 593-601.
-
[62] Y. L. Qi, Y. F. Zheng, H. Y. Yin, X. C. Song, J. Alloys Compd., 2017, 712, 535-542.
-
[63] J. Cao, X. Li, H. Lin, B. Xu, S. Chen, Q. Guan, Appl. Surf. Sci., 2013, 266, 294-299.
-
[64] H. Huang, X. Li, J. Wang, F. Dong, P. K. Chu, T. Zhang, Y. Zhang, ACS Catal., 2015, 5, 4094-4103.
-
[65] H. Huang, Y. He, X. Li, M. Li, C. Zeng, F. Dong, X. Du, T. Zhang, Y. Zhang, J. Mater. Chem. A, 2015, 3, 24547-24556.
-
[66] S. Yin, J. Di, M. Li, Y. Sun, J. Xia, H. Xu, W. Fan, H. Li, J. Mater. Sci., 2016, 51, 4769-4777.
-
[67] H. Huang, K. Xiao, Y. He, T. Zhang, F. Dong, X. Du, Y. Zhang, Appl. Catal. B, 2016, 199, 75-86.
-
[68] S. Bai, J. Jiang, Q. Zhang, Y. Xiong, Chem. Soc. Rev., 2015, 44, 2893-2939.
-
-
扫一扫看文章
计量
- PDF下载量: 14
- 文章访问数: 1797
- HTML全文浏览量: 281

下载: