Citation: Wendong Zhang, Xiaoli Liu, Xing'an Dong, Fan Dong, Yuxin Zhang. Facile synthesis of Bi12O17Br2 and Bi4O5Br2 nanosheets: In situ DRIFTS investigation of photocatalytic NO oxidation conversion pathway[J]. Chinese Journal of Catalysis, 2017, 38(12): 2030-2038. doi: 10.1016/S1872-2067(17)62941-3
Bi12O17Br2和Bi4O5Br2纳米片的简易制备及光催化氧化NO机理的原位漫反射红外光谱研究
XRD结果表明,在常温碱性环境下,OH-离子逐步取代BiOBr中的Br-离子制备得单斜晶相Bi4O5Br2;在水热碱性环境下,OH-离子进一步取代Bi4O5Br2中的Br-离子制备得四方晶相Bi12O17Br2.SEM和TEM结果表明,Bi12O17Br2是由不规则纳米片堆叠形成的紧密且厚实的层状结构,Bi4O5Br2是由纳米片和纳米颗粒无序堆积形成的多孔疏松结构.BET-BJH测试结果显示,Bi4O5Br2的比表面积和孔容(37.2 m2/g,0.215 cm3/g)显著高于Bi12O17Br2(8.7 m2/g,0.04 cm3/g).UV-Vis DRS测试结果显示,Bi12O17Br2和Bi4O5Br2均显示了良好的可见光吸收能力.可见光催化去除NO的测试结果表明,Bi4O5Br2(41.8%)的光催化活性明显高于Bi12O17Br2(28.3%).并且,在5次可见光催化循环实验后,Bi4O5Br2(41.1%)表现出良好可见光催化稳定性.ESR测试结果表明,Bi12O17Br2和Bi4O5Br2参与反应的主要活性物种均为·OH自由基,Bi4O5Br2产生·OH自由基明显强于Bi12O17Br2.EPR测试结果表明,Bi4O5Br2的氧空位明显多于Bi12O17Br2,丰富的氧空位更有利于NO的有效吸附.由此可见,Bi12O17Br2和Bi4O5Br2表现出不同的理化特性.
可见光催化氧化NO的原位红外光谱表明,只在Bi12O17Br2光催化氧化NO的转化路径中会生成中间产物N2O3,表明Bi12O17Br2和Bi4O5Br2具有不同的NO光催化转化路径.结合上述表征结果认为,Bi4O5Br2比Bi12O17Br2表现出更优异可见光催化性能的主要原因有以下四个方面为:(1)Bi4O5Br2拥有更高的比表面积和更大的孔容,有利于NO的吸附、反应中间产物的转移和提供更多的活性位点参与光催化反应;(2)Bi4O5Br2可以生成更多的·OH自由基和拥有更强的价带空穴氧化能力;(3)NO中的O原子可以与Bi4O5Br2的氧空位结合,从而提供更多的反应位点;(4)Bi4O5Br2的光催化反应中可以生成中间产物N2O3,可以降低NO转化成NO3-的反应活化能.
-
关键词:
- Bi12O17Br2
- / Bi4O5Br2
- / 原位漫反射红外光谱研究
- / 转化路径
- / NO氧化
English
Facile synthesis of Bi12O17Br2 and Bi4O5Br2 nanosheets: In situ DRIFTS investigation of photocatalytic NO oxidation conversion pathway
-
-
[1] X. Yu, J. J. Shi, L. J. Feng, C. H. Li, L. Wang, Appl. Surf. Sci., 2017, 396, 1775-1782.
-
[2] L. Chen, J. He, Y. Liu, P. Chen, C. T. Au, S. F. Yin, Chin. J. Catal., 2016, 37, 780-791.
-
[3] Y. Y. Lu, G. Liu, J. Zhang, Z. C. Feng, C. Li, Z. Li, Chin. J. Catal., 2016, 37, 349-358.
-
[4] T. Wang, W. W. Li, D. D. Xu, X. M. Wu, L. W. Cao, J. X. Meng, Chin. J. Catal., 2017, 38, 1184-1195.
-
[5] M. S. Bazarjani, M. Hojamberdiev, M. Koji, G. Q. Zhu, G. Cherkashinin, C. Fasel, T. Herrmann, H. Breitzke, A. Gurlo, R. Riedel, J. Am. Chem. Soc., 2013, 135, 4467-4475.
-
[6] H. F. Liang, W. Chen, R. R. Wang, Z. B. Qi, J. X. Mi, Z. C. Wang, Chem. Eng. J., 2015, 274, 224-230.
-
[7] X. Wang, Q. Xu, M. R. Li, S. Shen, X. L. Wang, Y. C. Wang, Z. C. Feng, J. Y. Shi, H. X. Han, C. Li, Angew. Chem. Int. Ed., 2012, 51, 13089-13092.
-
[8] T. Xiong, H. W. Huang, Y. J. Sun, F. Dong, J. Mater. Chem. A, 2015, 3, 6118-6127.
-
[9] T. Xiong, M. Q. Wen, F. Dong, J. Y. Yu, L. L. Han, B. Lei, Y. X. Zhang, X. S. Tang, Z. G. Zang, Appl. Catal. B, 2016, 199, 87-95.
-
[10] Y. P. Liu, L. Fang, H. D. Lu, Y. W. Li, C. Z. Hu, H. G. Yu, Appl. Catal. B, 2012, 115-116, 245-252.
-
[11] J. X. Li, W. L. Dai, J. Q. Yan, G. J. Wu, L. D. Li, N. J. Guan, Chin. J. Catal., 2015, 36, 432-438.
-
[12] W. D. Zhang, Z. W. Zhao, F. Dong, Y. X. Zhang, Chin. J. Catal., 2017, 38, 372-378.
-
[13] Y. L. Ham, K. Maeda, D. Cha, K. Takanabe, K. Domen, Chem. Asian J., 2013, 8, 218-224.
-
[14] S. Ghosh, N. A. Kouamé, L. Ramos, R. Samy, D. Alexandre, A. Deniset-Besseau, P. Beaunier, F. Goubard, P. H. Aubert, H. Remita, Nat. Mater., 2015, 14, 505-511.
-
[15] R. A. He, S. W. Cao, J. G. Yu, Acta. Phys-Chim. Sin., 2016, 32, 2841-2870.
-
[16] G. Liu, P. Niu, H. M. Cheng, ChemPhysChem., 2013, 14, 885-892.
-
[17] S. Y. Wang, X. L. Yang, X. H. Zhang, X. Ding, Z. X. Yang, K. Dai, H. Chen, Appl. Surf. Sci., 2017, 391, 194-201.
-
[18] Z. H. Ai, J. L. Wang, L. Z. Zhang, Chin. J. Catal., 2015, 36, 2145-2154.
-
[19] K. L. Li, W. W. Lee, C. S. Lu, Y. M. Dai, S. Y. Chou, H. L. Chen, H. P. Lin, C. C. Chen, J. Taiwan Inst. Chem. Eng., 2014, 45, 2688-2697.
-
[20] J. Di, J. X. Xia, M. X. Ji, S. Yin, H. P. Li, H. Xu, Q. Zhang, H. M. Li, J. Mater. Chem. A, 2015, 3, 15108-15118.
-
[21] Y. Peng, P. P. Yu, Q. G. Chen, H. Y. Zhou, A. W. Xu, J. Phys. Chem. C, 2015, 119, 13032-13040.
-
[22] X. M. Mao, F. X. Xie, M. Li. Mater. Lett., 2016, 166, 296-299.
-
[23] R. Li, F. X. Xie, J. X. Liu, Y. W. Wang, Y. F. Wang, X. C. Zhang, C. M. Fan, Dalton Trans., 2016, 45, 9182-9186.
-
[24] C. J. Bi, J. Cao, H. L. Lina, Y. J. Wang, S. F. Chen, Appl. Catal. B, 2016, 195, 132-140.
-
[25] F. Dong, J. Bian, Y. J. Sun, T. Xiong, W. D. Zhang, CrystEngComm., 2014, 16, 3592-3604.
-
[26] W. D. Zhang, Q. Zhang, F. Dong, Ind. Eng. Chem. Res., 2013, 52, 6740-6746.
-
[27] Z. W. Zhao, W. D. Zhang, Y. J. Sun, J. Y. Yu, Y. X. Zhang, H. Wang, F. Dong, Z. B. Wu, J. Phys. Chem. C, 2016, 120, 11889-11898.
-
[28] X. Xiao, W. D. Zhang, J. Y. Yu, Y. J. Sun, Y. X. Zhang, F. Dong, Catal. Sci. Technol., 2016, 6, 5003-5010.
-
[29] F. Dong, Z. W. Zhao, Y. J. Sun, Y. X. Zhang, S. Yan, Z. B. Wu, Environ. Sci. Technol., 2015, 49, 12432-12440.
-
[30] Z. Y. Wang, W. Guan, Y. J. Sun, F. Dong, Y. Zhou, W. K. Ho, Nanoscale., 2015, 7, 2471-2479.
-
[31] J. F. Li, L. Z. Yao, W. L. Cai, J. M. Mu, Acta. Phys. Sin., 2015, 50, 1623-1626.
-
[32] J. Z. Ma, H. M. Wu, Y. C. Liu, H. He, J. Phys. Chem. C., 2014, 118, 7434-7441.
-
[33] J. C. S. Wu, Y. T. Cheng, J. Catal., 2006, 237, 393-404.
-
[34] M. A. Debeila, N. J. Coville, M. S. Scurrell, G. R. Hearne, Appl. Catal. A, 2005, 291, 98-115.
-
[35] Q. P. Wu, C. C. Yang, R. Van de Krol, Catal. Today, 2014, 225, 96-101.
-
[36] M. Kantcheva. J. Catal., 2001, 204, 479-494.
-
[37] T. Weingand, S. Kuba, K. Hadjiivanov, H. Knoezinger, J. Catal., 2002, 209, 539-546.
-
[38] L. Sivachandiran, F. Thevenet, A. Rousseau, D. Bianchi, Appl. Catal. B, 2016, 198, 411-419.
-
[39] L. Zhong, Y. Yu, W. Cai, X. X. Geng, Q. Zhou, Phys. Chem. Chem. Phys., 2015, 17, 15036-15045.
-
[40] K. Hadjiivanov, Catal. Rev. Sci. Eng., 2007, 42, 71-144.
-
-
扫一扫看文章
计量
- PDF下载量: 5
- 文章访问数: 1293
- HTML全文浏览量: 137

下载: