264 results on '"Bennewitz R"'
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52. Fluctuations and jump dynamics in atomic friction experiments
53. A versatile instrument for in situ combination of scanning probe microscopy and time-of-flight mass spectrometry
54. Si(110)5×2−Au: A metallic chain structure
55. Force microscopy on insulators: imaging of organic molecules
56. Observation of Individual Molecules Trapped on a Nanostructured Insulator
57. Transition from Stick-Slip to Continuous Sliding in Atomic Friction: Entering a New Regime of Ultralow Friction
58. Distance dependence of force and dissipation in non-contact atomic force microscopy on Cu(100) and Al(111)
59. Cu-TBPP and PTCDA molecules on insulating surfaces studied by ultra-high-vacuum non-contact AFM
60. Interaction Potential and Hopping Dynamics Governing Sliding Friction
61. Silicon adatoms on the Si()5×2–Au surface
62. Correlations in a one-dimensional lattice fluid on Si(111)5×2-Au
63. Gd disilicide nanowires attached to Si(111) steps
64. Atomic scale memory at a silicon surface
65. Abrasive Wear on the Atomic Scale
66. Lateral-force measurements in dynamic force microscopy
67. One-dimensional Gd-induced chain structures on Si() surfaces
68. One-dimensional electronic states at surfaces
69. Atomically accurate Si grating with 5.73 nm period
70. Atomic-resolution images of radiation damage in KBr
71. Dynamic force microscopy of copper surfaces: Atomic resolution and distance dependence of tip-sample interaction and tunneling current
72. Experimental aspects of dissipation force microscopy
73. Atomically resolved edges and kinks of NaCl islands on Cu(111): Experiment and theory
74. Separation of interactions by noncontact force microscopy
75. Velocity Dependence of Atomic Friction
76. Molecular impurities at the NaCl(100) surface observed by scanning force microscopy
77. Atomic-scale stick-slip processes on Cu(111)
78. Kelvin Probe Force Microscopy on Surfaces: Investigation of the Surface Potential of Self-Assembled Monolayers on Gold
79. Aspects of dynamic force microscopy on NaCl/Cu(111): resolution, tip-sample interactions and cantilever oscillation characteristics
80. Preface
81. Ferroelectric domains and material contrast down to a 5 nm lateral resolution on uniaxial ferroelectric triglycine sulphate crystals
82. Surface potential studies of self-assembling monolayers using Kelvin probe force microscopy
83. Bulk and surface processes in low-energy-electron-induced decomposition ofCaF2
84. Theoretical modelling of steps and surface oxidation on CaF2(111)
85. The kinetics of CaF2 metallization induced by low-energy electron irradiation
86. Force microscopy of cleaved and electron-irradiated CaF2(111) surfaces in ultra-high vacuum
87. Scanning Force Imaging of Colloids on CaF2 (111) in the Ultra-High Vacuum
88. Surface colloid evolution during low-energy electron irradiation of CaF2(111)
89. Bulk and surface metallization of CaF2 under low energy electron irradiation
90. Electron stimulated desorption from CaF2: penetration depth of electrons and sample charging
91. Size evolution of low energy electron generated Ca colloids in CaF2
92. Probing electron induced defects in CaF2 by photothermal displacement
93. Characterization of Ca aggregates on CaF2 (111)-surfaces by atomic force, XPS, and fluorescence microscopy
94. Probing electron induced defects in CaF2by photothermal displacement
95. One-dimensional Gd-induced chain structures on Si( [formula omitted]) surfaces
96. Bulk and surface metallization of CaF 2 under low energy electron irradiation.
97. Aspects of dynamic force microscopy on NaCl/Cu(111): resolution, tipsample interactions and cantilever oscillation characteristics
98. Characterization of Ca aggregates on CaF2(111)-surfaces by atomic force, XPS, and fluorescence microscopy
99. Ferroelectric domain characterisation and manipulation : A challenge for scanning probe microscopy
100. Scanning Force Imaging of Colloids on CaF2 (111) in the Ultra-High Vacuum
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