Scanning probe microscopy (SPM) represents a powerful tool that, in the past 30 years, has allowed for the investigation of material surfaces in unprecedented ways at the nanoscale level. However, SPM has shown very little capability for depth penetration, which several nanotechnology applications require. Subsurface imaging has been achieved only in a few cases, when subsurface features influence the physical properties of the surface, such as the electronic states or the heat transfer. Ultrasonic force microscopy (UFM), an adaption of the contact mode atomic force microscopy, can dynamically measure the stiffness of the elastic contact between the probing tip and the sample surface. In particular, UFM has proven highly sensitive to the ne...
This work describes the use of scanning probe microscopy techniques to investigate the properties of...
Nondestructive subsurface nanoimaging of buried nanostructures is considered to be extremely challen...
We probe the interfacial forces in graphene-air and graphene-liquid environments with nanoscale reso...
Scanning probe microscopy (SPM) represents a powerful tool that, in the past 30 years, has allowed f...
Graphene and numerous other two-dimensional materials (2DM) possess unique mechanical, electronic an...
The increasing production of nano-devices and nano-composite materials has prompted the development ...
Atomically thin layers of graphene (GR) and other two-dimensional materials (2DM) such as hexagonal ...
Using combination of scanning probe microscopy, ultrasonic vibrations and electrostatic interactions...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Ultrasonic force microscopy (UFM) is an atomic force microscopy (AFM)-related technique originally i...
Ultrasonic farce microscopy (UFM) was introduced to probe nanoscale mechanical properties of stiff m...
The science and technology of thin films require the development of nondestructive methods for their...
Through implementing ultrasound detection with the AFM, a new branch of subsurface non-destructive t...
Advances in the design and fabrication of multifunctional nanostructured materials require character...
Imaging of nanoscale structures buried in a covering material is an extremely challenging task, but ...
This work describes the use of scanning probe microscopy techniques to investigate the properties of...
Nondestructive subsurface nanoimaging of buried nanostructures is considered to be extremely challen...
We probe the interfacial forces in graphene-air and graphene-liquid environments with nanoscale reso...
Scanning probe microscopy (SPM) represents a powerful tool that, in the past 30 years, has allowed f...
Graphene and numerous other two-dimensional materials (2DM) possess unique mechanical, electronic an...
The increasing production of nano-devices and nano-composite materials has prompted the development ...
Atomically thin layers of graphene (GR) and other two-dimensional materials (2DM) such as hexagonal ...
Using combination of scanning probe microscopy, ultrasonic vibrations and electrostatic interactions...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Ultrasonic force microscopy (UFM) is an atomic force microscopy (AFM)-related technique originally i...
Ultrasonic farce microscopy (UFM) was introduced to probe nanoscale mechanical properties of stiff m...
The science and technology of thin films require the development of nondestructive methods for their...
Through implementing ultrasound detection with the AFM, a new branch of subsurface non-destructive t...
Advances in the design and fabrication of multifunctional nanostructured materials require character...
Imaging of nanoscale structures buried in a covering material is an extremely challenging task, but ...
This work describes the use of scanning probe microscopy techniques to investigate the properties of...
Nondestructive subsurface nanoimaging of buried nanostructures is considered to be extremely challen...
We probe the interfacial forces in graphene-air and graphene-liquid environments with nanoscale reso...