Self-Assembled Peptide Nanotubes as an Etching Material for the Rapid Fabrication of Silicon Wires

被引:10
作者
Larsen M.B. [1 ]
Andersen K.B. [1 ]
Svendsen W.E. [1 ]
Castillo-León J. [1 ]
机构
[1] Department of Micro and Nanotechnology, Technical University of Denmark, Lyngby, Building 345 east
关键词
Diphenylalanine; Masking material; Peptide nanotubes; Peptide nanowires; Reactive-ion etching; Self-assembly; Silicon wires;
D O I
10.1007/s12668-011-0005-6
中图分类号
学科分类号
摘要
This study has evaluated self-assembled peptide nanotubes (PNTS) and nanowires (PNWS) as etching mask materials for the rapid and low-cost fabrication of silicon wires using reactive ion etching (RIE). The self-assembled peptide structures were fabricated under mild conditions and positioned on clean silicon wafers, after which these biological nanostructures were exposed to an RIE etching process. Following this treatment, the structure of the remaining nanotubes and nanowires was analyzed by scanning electron microscopy (SEM). Important differences in the behavior of the nanotubes and the nanowires were observed after the RIE process. The nanotubes remained intact while the nanowires were destroyed by the RIE process. The instability of the peptide nanowires during this process was further confirmed with focused ion beam milling experiments. The PNTS could stand energetic argon ions for around 32 s while the PNWS resisted only 4 s before becoming milled. Based on these results, self-assembled PNTS were further used as an etching mask to fabricate silicon wires in a rapid and low-cost manner. The obtained silicon wires were subjected to structural and electrical characterization by SEM and I-V measurements. Additionally, the fabricated silicon structures were functionalized with fluorescent molecules via a biotin-streptavidin interaction in order to probe their potential in the development of biosensing devices. © 2011 Springer Science+Business Media, LLC.
引用
收藏
页码:31 / 37
页数:6
相关论文
共 35 条
[1]  
de la Rica R., Matsui H., Applications of peptide and protein-based materials in bionanotechnology, Chemical Society Reviews, 39, 9, pp. 3499-3509, (2010)
[2]  
Scanlon S., Aggeli A., Self-assembling peptide nanotubes, Nano Today, 3, 3-4, pp. 22-30, (2008)
[3]  
Yan X.H., Zhu P.L., Li J.B., Self-assembly and application of diphenylalanine-based nanostructures, Chemical Society Reviews, 39, 6, pp. 1877-1890, (2010)
[4]  
Reches M., Gazit E., Designed aromatic homo-dipeptides: formation of ordered nanostructures and potential nanotechnological applications, Physical Biology, 3, 1, (2006)
[5]  
Castillo-Leon J., Rodriguez-Trujillo R., Gauthier S., Jensen A.C.O., Svendsen W.E., Micro-"factory" for self-assembled peptide nanostructures, Microelectron Eng, (2011)
[6]  
Andersen K.B., Castillo-Leon J., Hedstrom M., Svendsen W.E., Stability of diphenylalanine peptide nanotubes in solution, Nanoscale, 3, 3, pp. 994-998, (2011)
[7]  
Castillo J., Tanzi S., Dimaki M., Svendsen W., Manipulation of self-assembly amyloid peptide nanotubes by dielectrophoresis, Electrophoresis, 29, 24, pp. 5026-5032, (2008)
[8]  
Clausen C.H., Jensen J., Castillo J., Dimaki M., Svendsen W.E., Qualitative mapping of structurally different dipeptide nanotubes, Nano Letters, 8, 11, pp. 4066-4069, (2008)
[9]  
Reches M., Gazit E., Biological and chemical decoration of peptide nanostructures via biotin-avidin interactions, Journal of Nanoscience and Nanotechnology, 7, 7, pp. 2239-2245, (2007)
[10]  
Diaz J.A.C., Cagin T., Thermo-mechanical stability and strength of peptide nanostructures from molecular dynamics: self-assembled cyclic peptide nanotubes, Nanotechnology, (2010)