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1

Wiesendanger, Roland. Scanning Tunneling Microscopy III: Theory of STM and Related Scanning Probe Methods. Springer Berlin Heidelberg, 1993.

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2

International, Conference on Scanning Tunneling Microscopy/Spectroscopy and Related Techniques (12th 2003 Eindhoven Netherlands). Scanning tunneling microscopy/spectroscopy and related techniques: 12th International Conference STM'03, Eindhoven, The Netherlands, 21-25 July 2003. American Institute of Physics, 2003.

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3

International Conference on Scanning Tunneling Microscopy (1st 1986 Santiago de Compostela, Spain). STM '86: Proceedings of the First International Conference on Scanning Tunneling Microscopy, Santiago de Compostela, Spain, 14-18 July 1986. Edited by García N. North-Holland, 1987.

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4

Buchner, Florian. STM investigation of molecular architectures of porphyrinoids on a Ag(111) surface: Supramolecular ordering, electronic properties and reactivity. Springer Verlag, 2010.

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5

Abel, Phillip Benjamin. Design and calibration of a vacuum compatible scanning tunneling microscope. National Aeronautics and Space Administration, 1990.

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6

Othmar, Marti, and Amrein Matthias, eds. STM and SFM in biology. Academic Press, 1993.

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7

Chen, C. Julian. Introduction to Scanning Tunneling Microscopy. 3rd ed. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198856559.001.0001.

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The scanning tunnelling microscope (STM) was invented by Binnig and Rohrer and received a Nobel Prize of Physics in 1986. Together with the atomic force microscope (AFM), it enables non-destructive observing and mapping atoms and molecules on solid surfaces down to a picometer resolution. A recent development is the non-destructive observation of wavefunctions in individual atoms and molecules, including nodal structures inside the wavefunctions. STM and AFM have become indespensible instruments for scientists of various disciplines, including physicists, chemists, engineers, and biologists to
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8

STM and SFM in Biology, First Edition. Academic Press, 1993.

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9

(Editor), Othmar Marti, and Matthias Amrein (Editor), eds. STM and SFM in Biology, First Edition. Academic Press, 1993.

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10

1961-, Wiesendanger R., and Güntherodt H. J. 1939-, eds. Scanning tunneling microscopy: Theory of STM and related scanning probe methods. Springer-Verlag, 1993.

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11

Yang, Jinlong, and Qunxiang Li. Theoretical simulations of scanning tunnelling microscope images and spectra of nanostructures. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.15.

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This article presents theoretical simulations of scanning tunnelling microscope (STM) images and spectra of nanostructures. It begins with an overview of the theories of STM and scanning tunnelling spectroscopy (STS), focusing on four main approaches: the perturbation or Bardeen approach, the Tersoff–Hamann approach and its extension, the scattering theory or Landauer–Bütticker approach, and the non-equilibrium Green's function or Keldysh approach. It then considers conventional STM and STS experimental investigations of various systems including clean surfaces, ad-atoms, single molecules, sel
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12

1961-, Wiesendanger R., and Güntherodt H. J. 1939-, eds. Scanning tunneling microscopy III: Theory of STM and related scanning probe methods. Springer-Verlag, 1993.

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13

1961-, Wiesendanger R., and Güntherodt H. J. 1939-, eds. Scanning tunneling microscopy III: Theory of STM and related scanning probe methods. 2nd ed. Springer, 1996.

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14

Levin, Frank S. Quantum Tunneling. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198808275.003.0014.

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Quantum tunneling, wherein a quanject has a non-zero probability of tunneling into and then exiting a barrier of finite width and height, is the subject of Chapter 13. The description for the one-dimensional case is extended to the barrier being inverted, which forms an attractive potential well. The first application of this analysis is to the emission of alpha particles from the decay of radioactive nuclei, where the alpha-nucleus attraction is modeled by a potential well and the barrier is the repulsive Coulomb potential. Excellent results are obtained. Ditto for the similar analysis of pro
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15

(Editor), P. M. Koenraad, and M. Kemerink (Editor), eds. Scanning Tunneling Microscopy/Spectroscopy and Related Techniques: 12th International Conference, STM'03 (AIP Conference Proceedings). American Institute of Physics, 2003.

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16

(Editor), R. Wiesendanger, and H. J. Guntherodt (Editor), eds. Scanning Tunneling Microscopy III: Theory of Stm and Related Scanning Probe Methods (Springer Series in Surface Sciences). 2nd ed. Springer, 1997.

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17

Whangbo, Myung-Hwan, and Sergei N. Magonov. Surface Analysis with STM and AFM: Experimental and Theoretical Aspects of Image Analysis. VCH Publishers, 1996.

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18

Wiesendanger, R. Scanning Tunneling Microscopy III: Theory of Stm and Related Scanning Probe Methods (Springer Series in Surface Sciences). Springer-Verlag, 1993.

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19

Cuevas, J. C., D. Roditchev, T. Cren, and C. Brun. Proximity Effect A New Insight from In Situ Fabricated Hybrid Nanostructures. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.4.

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This article investigates the proximity effect on small length and energy scales in novel low-dimensional systems using in situ fabricated superconducting nanostructures (SNSs) and scanning tunneling microscopy/spectroscopy (STM/STS) techniques. After a brief historical review of research on superconductivity and the proximity effect, the article describes how to build a variety of in situ superconducting hybrid nanostructures and how to investigate the proximity density of states with the help of STM/STS. It then considers the proximity effect in a correlated 2D disordered metal and in diffus
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20

Stm And Afm Studies On Biomolecular Systems Unravelling The Nanoworld. Springer, 2008.

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21

Whangbo, Myung-Hwan, and Sergei N. Magonov. Surface Analysis with STM and AFM: Experimental and Theoretical Aspects of Image Analysis. Wiley & Sons, Incorporated, John, 2008.

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22

Whangbo, Myung-Hwan, and Sergei N. Magonov. Surface Analysis with STM and AFM: Experimental and Theoretical Aspects of Image Analysis. Wiley & Sons, Limited, John, 2007.

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23

Garica, N. Stm '86: Proceedings of the First International Conference on Scanning Tunneling Microscopy Santiago De Compostela, Spain, 14-18 July 1986. Elsevier Science Ltd, 1987.

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24

Wang, X. S., S. S. Kushvaha, X. Chu, H. Zhang, Z. Yan, and W. Xiao. Selective self-assembly of semi-metal straight and branched nanorods on inert substrates. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.15.

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This article discusses the selective self-assembly of semi-metal straight and branched nanorods on inert substrates. In particular, it describes antimony (Sb) nanorods and bismuth (Bi) nanobelts on inert substrates by physical vapor deposition in vacuum without using any catalyst and nanoscale template. After describing the experimental and drift correction procedures, the article reviews previous studies of semi-metal growth on inert substrates. It then measures the surface morphology and atomic structures of self-assembled Sb nanorods and Bi nanobelts using an in-situ scanning tunnelling mic
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25

Yang, Seung Yun. Reaction dynamics, a molecule at a time: Scanning tunneling microscopy (STM) studies of self-assembly and of induced reaction at silicon surfaces. 2005.

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26

Lindström, R., ed. The use of electrochemical scanning tunnelling microscopy (EC-STM) in corrosion analysis. CRC Press, 2006. http://dx.doi.org/10.1201/9781439824047.

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27

United States. National Aeronautics and Space Administration., ed. Design and calibration of a vacuum compatible scanning tunneling microscope. National Aeronautics and Space Administration, 1990.

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28

R, Lindström, European Federation of Corrosion, and Institute of Materials, Minerals, and Mining., eds. The use of electrochemical scanning tunnelling microscopy (EC-STM) in corrosion analysis: Reference material and procedural guidelines. Woodhead, 2007.

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29

The use of electrochemical scanning tunnelling microscopy (EC-STM) in corrosion analysis: Reference material and procedural guidelines (EFC 44) (European Federation of Corrosion Publications). CRC, 2006.

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30

Kulawansa, Digala Mudiyanselage. Scanning tunneling microscope observations of fracture surfaces of polymeric, silicate, and metallic glasses. 1991.

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31

Wade, Christopher Paul. Silicon surface chemistry in aqueous solutions studied with a novel scanning tunneling microscope. 1998.

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32

Baker, Robert Timothy. The order of things: Construction of a scanning tunneling microscope to study molecular order, phase segregation, and dynamics in ultrathin organic films. 1998.

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