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Influence of the molecular weights of amino-ended hyperbranched polyamide template on the morphology of self-assembled ZnS nanoparticles
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  • 作者:Daohong Zhang ; Tingting Liu ; Sufang Chen ; Menghe Miao…
  • 关键词:hyperbranched polymer ; zinc sulfide ; template ; morphology
  • 刊名:Macromolecular Research
  • 出版年:2016
  • 出版时间:October 2016
  • 年:2016
  • 卷:24
  • 期:10
  • 页码:892-899
  • 全文大小:1,424 KB
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Physical Chemistry
    Polymer Sciences
    Characterization and Evaluation of Materials
    Soft and Granular Matter, Complex Fluids and Microfluidics
    Nanochemistry
    Nanotec
  • 出版者:The Polymer Society of Korea, co-published with Springer
  • ISSN:2092-7673
  • 卷排序:24
文摘
Zinc sulfide (ZnS) as an important photocatalytic material in photodegrading organic dyes has attracted increasing attention to obtain high activity crystal structures. Here we report synthesis of wurtzite ZnS nanoparticles using amino-ended hyperbranched polyamide (AEHPA) with different molecular weights as templates. The microstructure, morphology and optical properties of the self-assembled ZnS particles were characterized using scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), photoluminescence spectra and UV-vis absorption. The molecular weight of the template has a remarkable influence on the microstructure and photocatalytic property of the self-assembled ZnS. Photocatalytic tests showed that the ZnS nanoparticle obtained using the AEHPA with a moderate molecular weight as template performed the best function in degradation of Rhodamine B under UV irradiation.Keywordshyperbranched polymerzinc sulfidetemplatemorphologyReferences(1).Y. Tang, X. Liu, C. Ma, M. Zhou, P. Huo, L. Yu, J. Pan, W. Shi, and Y. Yan, New J. Chem., 39, 5150 (2015).CrossRefGoogle Scholar(2).X. Huang, Y. Q. Yu, J. Xia, H. Fan, L. Wang, M. G. Willinger, X. P. Yang, Y. Jiang, T.-R. Zhang, and X. M. Meng, Nanoscale, 7, 5311 (2015).CrossRefGoogle Scholar(3).X. Xu, L. Hu, N. Gao, S. Liu, S. Wageh, A. A. Al Ghamdi, A. Alshahrie, and X. Fang, Adv. Funct. Mater., 25, 495 (2015).CrossRefGoogle Scholar(4).G. Niu, N. Li, L. Wang, W. Li, and Y. Qiu, Phys. Chem. Chem. Phys., 16, 18327 (2014).CrossRefGoogle Scholar(5).X. Zhao, F. Li, Q. Zhang, Z. Li, Y. Zhou, J. Yang, C. Dong, J. Wang, and S. Shuang, RSC Adv., 5, 21504 (2015).CrossRefGoogle Scholar(6).X. Wei, Z. P. Zhou, T. F. Hao, H. J. Li, and Y. S. Yan, RSC Adv., 5, 19799 (2015).CrossRefGoogle Scholar(7).W. Zhang, S. Wang, Y. Wang, Z. Zhu, X. Gao, J. Yang, and H. Zhang, RSC Adv., 5, 2620 (2015).CrossRefGoogle Scholar(8).H. D. Duang and J. I. Rhee, Talanta, 73, 899 (2008).CrossRefGoogle Scholar(9).K. Kaviyarasu, E. Manikandan, J. Kennedy, and M. Jayachandran, Mater. Lett., 120, 243 (2014).CrossRefGoogle Scholar(10).K. Kaviyarasu, E. Manikandan, P. Paulraj, S. B. Mohamed, and J. Kennedy, J. Alloys Compd., 593, 67 (2014).CrossRefGoogle Scholar(11).K. Kaviyarasu, E. Manikandan, J. Kennedy, and M. Maaza, RSC Adv., 5, 82421 (2015).CrossRefGoogle Scholar(12).Y. Zhou, G. Chen, Y. Yu, Y. Feng, Y. Zheng, F. He, and Z. Han, Phys. Chem. Chem. Phys., 17, 1870 (2015).CrossRefGoogle Scholar(13).Q. Peng, L. Han, X. Wen, S. Liu, Z. Chen, J. Lian, and S. De, RSC Adv., 5, 11240 (2015).CrossRefGoogle Scholar(14).M. Guth, A. Dinia, G. Schmerber, and H. A. M. den Berg. Van, Appl. Phys. Lett., 78, 3487 (2001).CrossRefGoogle Scholar(15).M. S. Akhtar, Y. G. Alghamdi, M. Azad Malik, R. M. Arif Khalil, S. Riaz, and S. Naseem, J. Mater. Chem. C, 3, 6755 (2015).CrossRefGoogle Scholar(16).Y. Ito, K. Matsuda, and Y. Kanemitsu, Phys. Status Solidi C, 6, 221 (2009).CrossRefGoogle Scholar(17).M. Li, S. K. Cushing, Q. Wang, X. Shi, L. A. Hornak, Z. Hong, and N. Wu, J. Phys. Chem. Lett., 2, 2125 (2011).CrossRefGoogle Scholar(18).Z. Li, B. Liu, S. Yu, J. Wang, Q. Li, B. Zou, T. Cui, Z. Liu, Z. Chen, and J. Liu, J. Phys. Chem. C, 115, 357 (2011).CrossRefGoogle Scholar(19).D. Kurbatov, A. Opanasyuk, and H. Khlyap, Physica Status Solidi A: Appl. Res., 206, 1549 (2009).CrossRefGoogle Scholar(20).G. O. Siqueira, T. Matencio, H. V. da Silva, Y. G. de Souza, J. D. Ardisson, G. M. de Lima, and A. de Oliveira Porto, Phys. Chem. Chem. Phys., 15, 6796 (2013).CrossRefGoogle Scholar(21).S. Saha, S. Sarkar, S. Pal, and P. Sarkar, J. Phys. Chem. C, 117, 15890 (2013).CrossRefGoogle Scholar(22).C. Finetti, M. Colombo, D. Prosperi, G. Alessio, C. Morasso, L. Sola, and M. Chiari, Chem. Commun., 50, 240 (2014).CrossRefGoogle Scholar(23).L. Fan, H. Song, H. Zhao, G. Pan, H. Yu, X. Bai, S. Li, Y. Lei, Q. Dai, R. Qin, T. Wang, B. Dong, Z. Zheng, and X. Ren, J. Phys. Chem. B, 110, 12948 (2006).CrossRefGoogle Scholar(24).A. Upcher, V. Ezersky, A. Berman, and Y. Golan, Cryst. Growth Des., 13, 2149 (2013).CrossRefGoogle Scholar(25).S. H. Yu and M. Yoshimura, Adv. Mater., 14, 296 (2002).CrossRefGoogle Scholar(26).D. Zhang, L. Qi, H. Cheng, and J. Ma, J. Colloid Interface Sci., 246, 413 (2002).CrossRefGoogle Scholar(27).Q. Zhao, L. Hou, and R. Huang, Inorg. Chem. Commun., 6, 971 (2003).CrossRefGoogle Scholar(28).Y. Hariyani and S. Pratapa, AIP Conf. Proc., 1617, 144 (2014).CrossRefGoogle Scholar(29).B. Sartowska and D. Wawszczak, Nukleonika, 51, S35S39 (2006).Google Scholar(30).S. Padalkar, J. Hulleman, S. M. Kim, T. Tumkur, J. C. Rochet, E. Stach, and L. Stanciu, J. Nanopart. Res., 11, 2031 (2009).CrossRefGoogle Scholar(31).Y. C. Zheng, S. P. Li, Z. L. Weng, and C. Cao, Chem. Soc. Rev., 44, 4091 (2015).CrossRefGoogle Scholar(32).L. J. Deng, F. Q. Huang, F. Q. Gao, Y. Yang, G. X. Yang, and L. U. Tian-Hongb, Chin. J. Appl. Chem., 27, 705 (2010).Google Scholar(33).X. Wang, Y. Li, M. Wang, W. Li, M. Chen, and Y. Zhao, New J. Chem., 38, 4182 (2014).CrossRefGoogle Scholar(34).M. Muruganandham, R. Amutha, E. Repo, M. Sillanp., Y. Kusumoto, and M. Abdulla-Al-Mamun, J. Photochem. Photobiol. A, 216, 133 (2010).CrossRefGoogle Scholar(35).J.-H. Li, A.-H. Lu, F. Liu, and L.-Z. Fan, 179, 1387 (2008).(36).S. Xiong, B. Xi, C. Wang, D. Xu, X. Feng, Z. Zhu, and Y. Qian, Adv. Funct. Mater., 17, 2728 (2007).CrossRefGoogle Scholar(37).H. Tong, Y. J. Zhu, L. X. Yang, L. Li, L. Zhang, J. Chang, L. Q. An, and S. W. Wang, J. Phys. Chem. C, 111, 3893 (2007).CrossRefGoogle Scholar(38).M. J. Casciato, G. Levitin, D. W. Hess, and M. A. Grover, Ind. Eng. Chem. Res., 51, 11710 (2012).CrossRefGoogle Scholar(39).S. A. Acharya, N. Maheshwari, L. Tatikondewar, and A. Kshirsagar, S. K. Kulkarni, Cryst. Growth Des., 13, 1369 (2013).CrossRefGoogle Scholar(40).S. Kar and S. Chaudhuri, J. Phys. Chem. B, 109, 3298 (2005).CrossRefGoogle Scholar(41).L. Jing, Y. Qu, B. Wang, S. Li, B Jiang, L. Yang, W. Fu, H. Fu, and J. Sun, Sol. Energy Mater. Sol. Cells, 90, 1773 (2006).CrossRefGoogle Scholar(42).J. Liu, B. Geng, and S. Wang, Cryst. Growth Des., 9, 4384 (2009).CrossRefGoogle Scholar(43).G. Xi, C. Wang, X. Wang, Q. Zhang, and H. Xiao, J. Phys. Chem. C, 112, 1946 (2008).CrossRefGoogle ScholarCopyright information© The Polymer Society of Korea and Springer Sciene+Business Media Dordrecht 2016Authors and AffiliationsDaohong Zhang1Email authorTingting Liu1Sufang Chen2Email authorMenghe Miao3Juan Cheng1Shenghui Chen1Dongyun Du1Jinlin Li11.Key Laboratory of Catalysis and Materials Science of the State Ethnic Affairs Commission & Ministry of EducationSouth-Central University for NationalitiesWuhan, Hubei ProvinceP. R. China2.Key Laboratory for Green Chemical Process of Ministry of EducationWuhan Institute of TechnologyWuhan, HubeiP. R. 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