2016Unpublished venueOpen access

Studies of the Properties of Designed Nanoparticles Using Atomic Force Microscopy

Steve Deese

Open full text 0 citations

Abstract

The purpose of the research in this dissertation was to elucidate the intrinsic properties of how nanoparticles are different from bulk materials. This was done by mechanical and electronic studies of the properties of designed nanoparticles using advanced modes of atomic force microscopy. Information relating to the work functions, contact potential difference, Young’s Moduli, elasticity, and viscoelasticity can be investigated using state-of-the-art atomic force microscope (AFM) experiments. Subsurface imaging of polystyrene encapsulated cobalt nanoparticles was achieved for the first time using Force Modulation Microscopy (FMM) in conjunction with contact mode AFM. Previously prepared sample of polystyrene coated cobalt nanoparticles were studied. Tapping-mode AFM was used to evaluate the size of coated nanoparticles. Force modulation microscopy was used to visualize details of the outer polystyrene coating. Differences between the softer polystyrene outer coating and the harder cobalt nanoparticle core was visualized based upon the elastic and viscoelastic properties. Variances in sample elasticity were monitored via the amplitude channel that monitors the oscillation amplitude of the cantilever while scanning. Viscoelastic differences were mapped by the phase channel which provides information of the phase lag of the probe. The identification of designed nanoparticles based upon electrochemical properties was evaluated using the Kelvin Probe Force Microscopy (KPFM) mode of AFM. The contact potential difference between the tip and the sample is measured using an AC bias that is offset with a compensating DC bias while operating in either tapping-mode or non-contact mode AFM. The contact potential difference is more commonly referred to as the difference in work function between the tip and the sample. The work function of a material can be calculated using a reference material with a known work function. Cobalt nanoparticles and gold nanoparticles were imaged using KPFM and baseline experimental contact potential difference values were obtained. Thus far, co-deposition of a mixed nanoparticle solution led to inconclusive results as the experimental and theoretical contact potential difference values were calculated. However, future studies relating to this experiment are planned.

Open-access reader

About this research paper

What this paper is about

The purpose of the research in this dissertation was to elucidate the intrinsic properties of how nanoparticles are different from bulk materials. This was done by mechanical and electronic studies of the properties of designed nanoparticles using advanced modes of atomic force microscopy. Information relating to the work functions, contact potential difference, Young’s Moduli, elasticity, and viscoelasticity can be investigated using state-of-the-art atomic force microscope (AFM) experiments. Subsurface imaging of polystyrene encapsulated cobalt nanoparticles was achieved for the first time using Force Modulation Microscopy (FMM) in conjunction with contact mode AFM. Previously prepared sample of polystyrene coated cobalt nanoparticles were studied. Tapping-mode AFM was used to evaluate the size of coated nanoparticles. Force modulation microscopy was used to visualize details of the outer polystyrene coating. Differences between the softer polystyrene outer coating and the harder cobalt nanoparticle core was visualized based upon the elastic and viscoelastic properties. Variances in sample elasticity were monitored via the amplitude channel that monitors the oscillation amplitude of the cantilever while scanning. Viscoelastic differences were mapped by the phase channel which provides information of the phase lag of the probe. The identification of designed nanoparticles based upon electrochemical properties was evaluated using the Kelvin Probe Force Microscopy (KPFM) mode of AFM. The contact potential difference between the tip and the sample is measured using an AC bias that is offset with a compensating DC bias while operating in either tapping-mode or non-contact mode AFM. The contact potential difference is more commonly referred to as the difference in work function between the tip and the sample. The work function of a material can be calculated using a reference material with a known work function. Cobalt nanoparticles and gold nanoparticles were imaged using KPFM and baseline experimental contact potential difference values were obtained. Thus far, co-deposition of a mixed nanoparticle solution led to inconclusive results as the experimental and theoretical contact potential difference values were calculated. However, future studies relating to this experiment are planned.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

The purpose of the research in this dissertation was to elucidate the intrinsic properties of how nanoparticles are different from bulk materials. This was done by mechanical and electronic studies of the properties of designed nanoparticles using advanced modes of atomic force microscopy. Information relating to the work functions, contact potential difference, Young’s Moduli, elasticity, and viscoelasticity can be investigated using state-of-the-art atomic force microscope (AFM) experiments. Subsurface imaging of polystyrene encapsulated cobalt nanoparticles was achieved for the first time using Force Modulation Microscopy (FMM) in conjunction with contact mode AFM. Previously prepared sample of polystyrene coated cobalt nanoparticles were studied. Tapping-mode AFM was used to evaluate the size of coated nanoparticles. Force modulation microscopy was used to visualize details of the outer polystyrene coating. Differences between the softer polystyrene outer coating and the harder cobalt nanoparticle core was visualized based upon the elastic and viscoelastic properties. Variances in sample elasticity were monitored via the amplitude channel that monitors the oscillation amplitude of the cantilever while scanning. Viscoelastic differences were mapped by the phase channel which provides information of the phase lag of the probe. The identification of designed nanoparticles based upon electrochemical properties was evaluated using the Kelvin Probe Force Microscopy (KPFM) mode of AFM. The contact potential difference between the tip and the sample is measured using an AC bias that is offset with a compensating DC bias while operating in either tapping-mode or non-contact mode AFM. The contact potential difference is more commonly referred to as the difference in work function between the tip and the sample. The work function of a material can be calculated using a reference material with a known work function. Cobalt nanoparticles and gold nanoparticles were imaged using KPFM and baseline experimental contact potential difference values were obtained. Thus far, co-deposition of a mixed nanoparticle solution led to inconclusive results as the experimental and theoretical contact potential difference values were calculated. However, future studies relating to this experiment are planned.

Key concepts: Kelvin probe force microscope, Materials science, Nanoparticle, Viscoelasticity, Non-contact atomic force microscopy, Polystyrene, Conductive atomic force microscopy, Nanotechnology

Related papers

Back to paper searchBrowse research topicsOriginal source
Studies of the Properties of Designed Nanoparticles Using Atomic Force Microscopy — Research Paper | ScholarLens