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Quantum wires by direct laser fabrication

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Abstract

For optoelectronic device applications, quantum wires can be used as active media due to their unique physical properties. However, conventional approaches such as the self-assembly via the Stranski-Krastanov (S-K) growth technique have a limited success in their applications toward optoelectronic devices including photovoltaics and solar cells. A novel fabrication mechanism for quality quantum wires has been discovered. The laser fabricated nanowires semiconductor surfaces can have width and height as small as 30 and 5 nm, respectively while the density is one per 200 nm.

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References

  1. V. Shchukin, N.N. Ledentsov, D. Bimberg, Epitaxy of Nanostructures, Springer, Berlin, 2003.

    Google Scholar 

  2. H. Yang, P. Ballet, G.J. Salamo, Formation of quantum wires and dots on InP(001) by As/P exchange, Journal of Applied Physics, 89 (2001) 7871–7874.

    Article  CAS  Google Scholar 

  3. C. Zhang, X. Miao, P.K. Mohseni, W. Choi, X. Li, Site-Controlled VLS Growth of Planar Nanowires: Yield and Mechanism, Nano Letters, 14 (2014) 6836–6841.

    Article  CAS  Google Scholar 

  4. C.V. Shank, R.V. Schmidt, Optical technique for producing 0.1-μ periodic surface structures, Applied Physics Letters, 23 (1973) 154–155.

    Article  Google Scholar 

  5. Z. Chen, C. Wonsik, P.K. Mohseni, L. Xiuling, InAs Planar Nanowire Gate-All-Around MOSFETs on GaAs Substrates by Selective Lateral Epitaxy, Electron Device Letters, IEEE, 36 (2015) 663–665.

    Google Scholar 

  6. S.A. Fortuna, J. Wen, I.S. Chun, X. Li, Planar GaAs Nanowires on GaAs (100) Substrates: Self-Aligned, Nearly Twin-Defect Free, and Transfer-Printable, Nano Letters, 8 (2008) 4421– 4427.

    Article  CAS  Google Scholar 

  7. H. Yang, Direct laser patterning of GaAs(001) surfaces, MRS Online Proceedings Library, 1628 (2014).

  8. C.M. Clegg, H. Yang, Guided assembly of quantum dots through selective laser heating, Solar Energy Materials and Solar Cells, 108 (2013) 252–255.

    Article  CAS  Google Scholar 

  9. B. Rezek, C.E. Nebel, M. Stutzmann, Laser beam induced currents in polycrystalline silicon thin films prepared by interference laser crystallization, Journal of Applied Physics, 91 (2002) 4220–4228.

    Article  CAS  Google Scholar 

  10. T.A. Savas, M. Farhoud, H.I. Smith, M. Hwang, C.A. Ross, Properties of large-area nanomagnet arrays with 100 nm period made by interferometric lithography, Journal of Applied Physics, 85 (1999) 6160–6162.

    Article  CAS  Google Scholar 

  11. W. Zhao, R.W. Verhoef, M. Asscher, Diffusion of potassium on Re(001) investigated by coverage grating-optical second-harmonic diffraction, J. Chem. Phys., 107 (1997) 5554–5560.

    Article  CAS  Google Scholar 

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Haghizadeh, A., Yang, H. Quantum wires by direct laser fabrication. MRS Advances 1, 2065–2069 (2016). https://doi.org/10.1557/adv.2016.392

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  • DOI: https://doi.org/10.1557/adv.2016.392

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