期刊文献+

多羟基化合物法制备五次孪晶银纳米线的生长机理 被引量:6

Growth Mechanism of Penta-twinned Ag Nanowires Synthesized by Polyol Process
在线阅读 下载PDF
导出
摘要 运用多羟基化合物方法,在添加表面活性剂聚乙烯吡咯烷酮(PVP)K30的溶液中合成了多次孪晶银纳米颗粒和纳米线.运用透射电子显微术(TEM)和光吸收谱,对不同的摩尔比n(PVP)∶n(AgNO3)和不同的搅拌条件下制备的纳米线进行了对比研究.结果表明,这种方法的制备过程中不仅存在由五个{111}面包裹成的锥形生长,而且还同时存在垂直于生长方向的{110}层状生长,并且两者之间还存在着竞争;另外对纳米线的弯折处进行的高分辨电子显微学研究表明,纳米线制备过程中遭受的塑性变形在纳米线中产生了大量的层错和位错;纳米线折断产生的新鲜断口容易成为新的晶粒形核位置. Multi-twinned silver nanoparticles and nanowires were synthesized by polyol process in the presence of surfactant poly (vinyl pyrrolidone) (PVP) K30. In order to study the growth mechanism, silver nanowires were synthesized under various conditions by changing n(PVP)/n(AgNO3) and the state of agitation. A comparative study of these nanowires was performed by means of transmission electron microscopy (TEM) and optical absorption spectra. The results showed that there coexisted two different growth modes, and hence the competition between them. According to one mode, the as-synthesized nanowires grew along {111} faces, by which the pentagonal pyramid-shaped tip was enclosed, as the active facets. By another mode, the nanowires grew layer by layer along{110} face, which was perpendicular to the wire axis [110], as the active facet. There were many stacking faults and dislocations in the nanowires deformed plastically during the preparation of the nanowires. The fresh fracture surfaces of the nanowires were the favorable positions where the nucleation and growth of newly formed crystals might take place.
出处 《物理化学学报》 SCIE CAS CSCD 北大核心 2008年第5期781-787,共7页 Acta Physico-Chimica Sinica
基金 国家自然科学基金(50171048)资助项目
关键词 生长机理 银纳米线 多羟基化合物法 五次孪晶 Growth mechanism Silver nanowires Polyol process Penta-twinning
  • 相关文献

参考文献26

  • 1Favier, F,; Walter, E. C.; Zach, M, P,; Benter, T,; Penner, R. M, Science, 2001, 293:2227
  • 2Cui, Y.; Wei, Q. Q.; Park, H. K.; Lieber, C. M. Science, 2001, 293: 1289
  • 3Hart, J. B.; Chen, D. J.; Ding, S.; Zhou, H. J.; Hart, Y. B.; Xiong, G. G.; Wang, Q. Q. J. Appl. Phys., 2006, 99:023526
  • 4Wang, Q. Q.; Han, J. B.; Gong, H. M.; Chen, D. J.; Zhao, X. J.; Feng, J. Y.; Ren, J. J. Adv. Funct. Mater., 2006, 16:2405
  • 5Wang, Q. Q.; Han, J. B.; Guo, D. L.; Xiao, S.; Han, Y. B.; Gong, H. M.; Zou, X. W. Nano Lett., 2007, 7(3): 723
  • 6Ding, S.; Wang, X.; Chen, D. J.; Wang, Q. Q. Optics Express, 2006, 14(4): 1541
  • 7Zhang, S. H.; Xie, Z. X.; Jiang, Z. Y.; Xu, X.; Xiang, J.; Huang, R. B.; Zheng, L. S. Chem. Comm., 2004:1106
  • 8姚会军,刘杰,段敬来,侯明东,孙友梅,莫丹,陈艳峰,薛智浩.重离子径迹模板法合成银纳米线[J].物理化学学报,2007,23(4):489-492. 被引量:16
  • 9Zhang, Y.; Dai, H. J. Appl. Phys. Lett., 2000, 77(19): 3015
  • 10Braun, E.; Eichen, Y.; Sivan, U.; Ben-Yoseph, G. Nature, 1998, 391:775

二级参考文献24

  • 1姚会军,刘杰,侯明东,孙友梅,段敬来,莫丹.离子径迹模板法制备纳米线[J].原子核物理评论,2006,23(1):55-58. 被引量:7
  • 2Wang,Z.L.Adv.Mater.,2000,12:1295
  • 3Hu,J.; Odom,T.W.; Lieber,C.M.Acc.Chem.Res.,1999,32:435
  • 4Possin,E.Rev.Sci.Instrum.,1970,41:772
  • 5Rahmana,I.Z.; Boboca,A.; Razeeb,K.M.; Rahman,M.A.J.Magn.Magn.Mater.,2005,290-291:246
  • 6Fedosyuk,V.M.; Kasyutich,O.I.; Schwarzacher,W.J.Magn.Magn.Mater.,1999,198-199:246
  • 7Lin,S.W.; Chang,S.C.; Liu,R.S.; Hu,S.F.; Jan,N.T.J.Magn.Magn.Mater.,2004,282:28
  • 8Kim,K.T.; Cho,S.M.Mater.Lett.,2006,60:352
  • 9Yang,S.G.; Zhu,H.; Yu,D.L.; Jin,Z.Q.; Tang,S.L.; Du,Y.W.J.Magn.Magn.Mater.,2000,222:97
  • 10Wu,B.; Boland,J.J.J.Coll.Inter.Sci.,2006,303:611

共引文献15

同被引文献151

引证文献6

二级引证文献31

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部