Peak Force Quantitative Nanomechanical Property Mapping

Peak Force Quantitative Nanomechanical Property Mapping is an atomic force microscopy technique that measures and spatially maps the mechanical properties of surfaces at the nanoscale. During scanning, a probe tip approaches and retracts from each location while force-distance curves capture interactions such as deformation and adhesion; fitting these responses yields quantitative property values. In engineering, the method helps relate composition, microstructure, and processing to local stiffness and interfacial behavior in polymers, composites, coatings, and other materials. The resulting maps reveal heterogeneity and damage that bulk tests can miss, supporting failure analysis, quality control, and materials design.

Peak Force Quantitative Nanomechanical Property Mapping - Related Videos

Research

JoVE Journal - Engineering

Atomic Force Microscopy of Red-Light Photoreceptors Using PeakForce Quantitative Nanomechanical Property Mapping

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Cited by 6 •

2014

A method for investigating the structure of a protein photoreceptor using atomic force microscopy (AFM) is described in this paper. PeakForce Quantitative Nanomechanical Property Mapping (PF-QNM) reveals intact protein dimers on a mica surface.

Measuring the Mechanical Properties of Living Cells Using Atomic Force Microscopy

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Cited by 160 •

2013

This paper demonstrates a protocol to characterize the mechanical properties of living cells by means of microindentation using an Atomic Force Microscope (AFM).

Concurrent Quantitative Conductivity and Mechanical Properties Measurements of Organic Photovoltaic Materials using AFM

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Cited by 3 •

2013

Organic photovoltaic (OPV) materials are inherently inhomogeneous at the nanometer scale. Nanoscale inhomogeneity of OPV materials affects performance of photovoltaic devices. In this paper, we describe a protocol for quantitative measurements of electrical and mechanical properties of OPV materials with sub-100 nm resolution.

Education

JoVE Science Education - Engineering

Quantitative Strain Mapping of an Abdominal Aortic Aneurysm

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2023

Source: Hannah L. Cebull1, Arvin H. Soepriatna1, John J. Boyle2 and Craig J. Goergen1 1Weldon School of Biomedical Engineering, Purdue University, West Lafayette, Indiana 2Mechanical Engineering & Materials Science, Washington University in St. Louis, St Louis, Missouri The mechanical behavior of soft tissues, such as blood vessels, skin, tendons, and other organs, are strongly influenced by their composition of elastin and collagen, which provide elasticity and strength. The fiber...

Quantitative Susceptibility Mapping of a Human Brain Using Ex-Vivo Magnetic Resonance Imaging

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2025

Quantitative susceptibility mapping, or QSM, quantifies the magnetic susceptibility of brain tissue, which reflects its cellular composition, like myelin content.Begin by acquiring ex-vivo magnetic resonance imaging or MRI data of a fixed human brain hemisphere.Use 3D gradient magnetic fields to magnetize the tissue and collect signals at multiple time points or echoes to reduce background noise and artifacts and enhance the signals.Generate phase maps for all echoes, ensuring the removal of...

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