Acoustic Scanning Probe Microscopy
Edited by Francesco Marinello, Daniele Passeri and Enrico Savio
|
Online price: £97.20
RRP: £108.00
You save £10.80 (10% discount) Series: NanoScience and Technology Category: Classical Mechanics, General Nanotechnology, General Material Science, General Material Science, General Material Science |
The combination of atomic force microscopy with ultrasonic methods allows the nearfield detection of acoustic signals. The nondestructive characterization and nanoscale quantitative mapping of surface adhesion and stiffness or friction is possible. The aim of this book is to provide a comprehensive review of different scanning probe acoustic techniques, including AFAM, UAFM, SNFUH, UFM, SMM and torsional tapping modes. Basic theoretical explanations are given to understand not only the probe dynamics but also the dynamics of tip surface contacts. Calibration and enhancement are discussed to better define the performance of the techniques, which are also compared with other classical techniques such as nanoindentation or surface acoustic wave. Different application fields are described, including biological surfaces, polymers and thin films.
The combination of atomic force microscopy with ultrasonic methods allows the nearfield detection of acoustic signals. The nondestructive characterization and nanoscale quantitative mapping of surface adhesion and stiffness or friction is possible. The aim of this book is to provide a comprehensive review of different scanning probe acoustic techniques, including AFAM, UAFM, SNFUH, UFM, SMM and torsional tapping modes. Basic theoretical explanations are given to understand not only the probe dynamics but also the dynamics of tip surface contacts. Calibration and enhancement are discussed to better define the performance of the techniques, which are also compared with other classical techniques such as nanoindentation or surface acoustic wave. Different application fields are described, including biological surfaces, polymers and thin films.
From the contents: Overview of acoustic techniques.- Contact dynamics modelling.- Cantilever dynamics: theoretical modeling.- Finite elements modelling.- AFAM calibration.- Enhanced sensitivity.- UAFM.- Holography calibration.- UFM.- Friction/lateral techniques.- Harmonix.- Scanning microdeformation microscopy (SMM).- Tip wear.- Comparison with other techniques.- Applications polymer.- Thin films.
Publication Details:
Binding: Hardback, 320 pages
ISBN: 9783642274930
Format: 235mm x 155mm
BIC Code: PHDS, TBN, TDPB, TGM, TGMT, TTBL
Imprint: Springer
Other visitors also viewed:
![]() |
![]() |
![]() |
![]() |
- Acoustic Scanning Probe Microscopy
- Applied Physics of Carbon Nanotubes - Fundamentals of Theory, Optics and Transport Devices
- Applied Scanning Probe Methods - Volumes I - XIII
- Applied Scanning Probe Methods I
- Applied Scanning Probe Methods II - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods II - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods III - Characterization
- Applied Scanning Probe Methods III - Characterization
- Applied Scanning Probe Methods IV - Industrial Applications
- Applied Scanning Probe Methods IV - Industrial Applications
- Applied Scanning Probe Methods IX - Characterization
- Applied Scanning Probe Methods IX - Characterization
- Applied Scanning Probe Methods V - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods V - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods VI - Characterization
- Applied Scanning Probe Methods VI - Characterization
- Applied Scanning Probe Methods VII - Biomimetics and Industrial Applications
- Applied Scanning Probe Methods VII - Biomimetics and Industrial Applications
- Applied Scanning Probe Methods VIII - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods VIII - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods X - Biomimetics and Industrial Applications
- Applied Scanning Probe Methods X - Biomimetics and Industrial Applications
- Applied Scanning Probe Methods XI - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods XI - Scanning Probe Microscopy Techniques
- Applied Scanning Probe Methods XII - Characterization
- Applied Scanning Probe Methods XII - Characterization
- Applied Scanning Probe Methods XIII - Biomimetics and Industrial Applications
- Applied Scanning Probe Methods XIII - Biomimetics and Industrial Applications
- Atomic Force Microscopy, Scanning Nearfield Optical Microscopy and Nanoscratching - Application to Rough and Natural Surfaces
- Atomic Force Microscopy, Scanning Nearfield Optical Microscopy and Nanoscratching - Application to Rough and Natural Surfaces
- Biological Micro- and Nanotribology - Nature's Solutions
- Bionanoelectronics - Bioinquiring and Bioinspired Devices
- Charge Migration in DNA - Perspectives from Physics, Chemistry, and Biology
- Charge Migration in DNA - Perspectives from Physics, Chemistry, and Biology
- Epitaxy of Nanostructures
- Fundamentals of Friction and Wear
- Fundamentals of Superconducting Nanoelectronics
- Graphene Nanoelectronics - Metrology, Synthesis, Properties and Applications
- Lateral Alignment of Epitaxial Quantum Dots
- Lateral Alignment of Epitaxial Quantum Dots
- Low Dimensional Semiconductor Structures - Characterization, Modeling and Applications
- Magnetic Microscopy of Nanostructures
- Multiscale Dissipative Mechanisms and Hierarchical Surfaces - Friction, Superhydrophobicity, and Biomimetics
- Multiscale Dissipative Mechanisms and Hierarchical Surfaces - Friction, Superhydrophobicity, and Biomimetics
- Nanocatalysis
- Nanocatalysis
- Nanoelectrodynamics - Electrons and Electromagnetic Fields in Nanometer-Scale Structures
- Nanomedicine and Nanobiotechnology
- Nanoparticles from the Gasphase - Formation, Structure, Properties
- Nanoscale Characterisation of Ferroelectric Materials - Scanning Probe Microscopy Approach
- Nanoscale Devices - Fabrication, Functionalization, and Accessibility from the Macroscopic World
- Nanoscale Phenomena - Fundamentals and Applications
- Nanoscience and Engineering in Superconductivity
- Nanostructured Materials and Their Applications
- Nanostructured Soft Matter - Experiment, Theory, Simulation and Perspectives
- Nanostructures - Fabrication and Analysis
- Nanostructures - Fabrication and Analysis
- Nanostructures - Theory and Modelling
- Nanowelded Carbon Nanotubes - From Field-Effect Transistors to Solar Microcells
- Noncontact Atomic Force Microscopy - Volume 2
- Optical Generation and Control of Quantum Coherence in Semiconductor Nanostructures
- Principles of Nanomagnetism
- Quantum Materials, Lateral Semiconductor Nanostructures, Hybrid Systems and Nanocrystals - Lateral Semiconductor Nanostructures, Hybrid Systems and Nanocrystals
- Roadmap of Scanning Probe Microscopy
- Roadmap of Scanning Probe Microscopy
- Scanning Probe Microscopy - Analytical Methods
- Scanning Probe Microscopy - Atomic Scale Engineering by Forces and Currents
- Scanning Probe Microscopy - Atomic Scale Engineering by Forces and Currents
- Scanning Probe Microscopy in Nanoscience and Nanotechnology
- Scanning Probe Microscopy in Nanoscience and Nanotechnology 2
- Scanning Probe Microscopy in Nanoscience and Nanotechnology 3
- Semiconductor Nanostructures
- Semiconductor Nanostructures
- Semiconductor Nanostructures for Optoelectronic Devices - Processing, Characterization and Applications
- Semiconductor Quantum Dots - Physics, Spectroscopy and Applications
- Semiconductor Spintronics and Quantum Computation
- Silicon Quantum Integrated Circuits - Silicon-Germanium Heterostructure Devices: Basics and Realisations
- Silicon Quantum Integrated Circuits - Silicon-Germanium Heterostructure Devices: Basics and Realisations
- Single Molecule Chemistry and Physics - An Introduction
- Single Semiconductor Quantum Dots
- Single Semiconductor Quantum Dots
- Sliding Friction - Physical Principles and Applications
- Theory of Semiconductor Quantum Devices - Microscopic Modeling and Simulation Strategies

Email to a colleague