Design and performance of an ultra-high vacuum scanning tunneling microscope operating at dilution refrigerator temperatures and high magnetic fields

Oct 3, 2013
9 pages
Published in:
  • Rev.Sci.Instrum. 84 (2013) 103903
  • Published: 2013
e-Print:

Citations per year

201620182020202220240123456
Abstract: (AIP)
We describe the construction and performance of a scanning tunneling microscope capable of taking maps of the tunneling density of states with sub-atomic spatial resolution at dilution refrigerator temperatures and high (14 T) magnetic fields. The fully ultra-high vacuum system features visual access to a two-sample microscope stage at the end of a bottom-loading dilution refrigerator, which facilitates the transfer of in situ prepared tips and samples. The two-sample stage enables location of the best area of the sample under study and extends the experiment lifetime. The successful thermal anchoring of the microscope, described in detail, is confirmed through a base temperature reading of 20 mK, along with a measured electron temperature of 250 mK. Atomically resolved images, along with complementary vibration measurements, are presented to confirm the effectiveness of the vibration isolation scheme in this instrument. Finally, we demonstrate that the microscope is capable of the same level of performance as typical machines with more modest refrigeration by measuring spectroscopic maps at base temperature both at zero field and in an applied magnetic field.
Note:
  • 9 pages, 7 figures
  • Micromixing
  • Scanning tunneling microscopes
  • Vacuum chambers
  • Scanning tunneling microscopy
  • Refrigerators
  • 1N Courtois, and B. Pannetier
    • H. Moussy
      • Rev.Sci.Instrum. 72 (2001) 128
  • 2B
    • I. Barker
      ,
    • S.K. Dutta
      ,
    • C. Lupien
      ,
    • P.L. McEuen
      ,
    • N. Kikugawa
    et al.
      • Physica B 329 (2003) 1334
  • 3H Niimi, and H. Fukuyama
    • Kambara
      ,
    • Y. T. Matsui
      • Rev.Sci.Instrum. 78 (2007) 073703
  • 4M Goll, and H. v. Lohneysan
    • G. Marz
      • Rev.Sci.Instrum. 81 (2010) 045102
  • 5Y
    • J. Song
      ,
    • A.F. Otte
      ,
    • V. Shvarts
      ,
    • Z. Zhao
      ,
    • Y. Kuk
    et al.
      • Rev.Sci.Instrum. 81 (2010) 121101
  • 6U
    • R. Singh
      ,
    • M. Enayat
      ,
    • S.C. White
      ,
    • P. Wahl
      • Rev.Sci.Instrum. 84 (2013) 013708
  • 7H Guillamon, and S. Vieira
    • I. Suderow
      • Rev.Sci.Instrum. 82 (2011) 033711
  • 8M Ast, and K. Kern
    • Assig
      ,
    • M. Etzkom
      ,
    • A. Enders
      ,
    • C.R. W. Stiepany
      • Rev.Sci.Instrum. 84 (2013) 033903
  • 9L
    • M. Hernandez
      ,
    • A.M. Goldman
      • Rev.Sci.Instrum. 73 (2002) 162
  • 10V Bobb, and M. Jirmanus, J. Phys.: Conf. Ser. 150, 012046 (2009)
    • Shvarts
      ,
    • L. Z. Zhao
    • 11S J. Phys.: Conf. Ser. 400, 052012 (2012)
      • C.J. Kingsley
        ,
      • H. Jones
        ,
      • A. Twin
        ,
      • H. Agarwal
        ,
      • A. Mathews
      et al.
      • 13W
        • P. Kirk
          ,
        • M. Twerdochlib
          • Rev.Sci.Instrum. 49 (1978) 765
      • 14I Evidence for the Josephson Effect in Quantum Hall Bilayers, Ph.D. thesis, California Institute of Technology (2004)
        • B. Spielman
        • 15C Pan, and R. Wiesendanger
          • Whittneven
            ,
          • S.H. R. Dombrowski
            • Rev.Sci.Instrum. 68 (1997) 3806
        • 16D Esteve, and M. H. Devoret
          • Vion
            ,
          • P.F. Orfila
            ,
          • D. P. Joyez
            • J.Appl.Phys. 77 (1995) 2519
        • 17K Delsing, and M. Taslakov
          • Bladh
            ,
          • D. Gunnarsson
            ,
          • E. Hurfeld
            ,
          • S. Devi
            ,
          • C. Kristoffersson
          et al.
            • Rev.Sci.Instrum. 74 (2003) 1323
        • 18G
          • L. Wells
            ,
          • J.E. Jackson
            ,
          • E.N. Mitchell
            • Phys.Rev.B 1 (1976) 3636
        • 19B Bauer, and A. Yazdani
          • B. Zhou
            ,
          • S. Misra
            ,
          • E.H. da Silva Neto
            ,
          • P. Aynajian
            ,
          • R.E. Baumbach
          et al.
            • Nature Phys. 9 (2013) 474
        • 20B
          • C. Stipe
            ,
          • M.A. Rezaei
            ,
          • W. Ho
            • Rev.Sci.Instrum. 70 (1999) 137