MTech Projects
  • HOME
  • MTECH PROJECTS
    • COMPUTER SCIENCE
      • MTech Python Projects
        • Machine Learning Projects
        • Deep Learning Projects
        • Blockchain Projects
        • django Projects
      • MTech Java Projects
        • Cloud Computing Projects
        • Data Mining Projects
        • Mobile Computing Projects
        • Networking Projects
      • MTech NS2 Projects
        • Wireless Communication Projects
        • Vehicular Technology Projects
      • MTech Hadoop Projects
      • MTech Android Projects
    • ELECTRONICS
      • MTech DSP Projects
      • MTech DIP Projects
      • MTech VLSI Projects
      • MTech Communication Projects
    • ELECTRICAL
      • MTech Power Systems Projects
      • MTech Power Electronics Projects
      • MTech Control Systems Projects
    • OTHER
      • Chemical Projects
      • Mechanical Projects
      • All Other Projects
  • EMBEDDED KITS
    • MTech Embedded Kits
    • BTech Embedded Kits
  • PROJECTS+
  • PUBLISHING
    • Research Publishing
    • Authors Guidelines
    • Publishing Policy
  • CONTACT US

Contact Us

  • Street Number 4, Jawahar Nagar, RTC X Road, Hyderabad 500044
  • +91 9573777164
  • info@mtechprojects.com

Welcome to MTech Projects - Online Projects for MTech Students

  • My Account
  • Careers
  • Downloads
  • Blog
MTech Projects
  • Email Us
  • Phone Number
  • Open Hours
  • HOME
  • MTECH PROJECTS

    MTech Python Projects

    • Machine Learning Projects
    • Deep Learning Projects
    • Blockchain Projects
    • django Projects

    MTECH JAVA PROJECTS

    • Cloud Computing Projects
    • Data Mining Projects
    • Mobile Computing Projects
    • Networking Projects

    MTECH NS2 PROJECTS

    • Wireless Communication Projects
    • Vehicular Technology Projects
    • MTech Hadoop Projects
    • MTech Android Projects

    ELECTRONICS

    • MTech DSP Projects
    • MTech DIP Projects
    • MTech VLSI Projects
    • MTech Communication Projects

    ELECTRICAL

    • MTech Power Systems Projects
    • MTech Power Electronics Projects
    • MTech Control Systems Projects

    OTHER

    • Chemical Projects
    • Mechanical Projects
    • All Other Projects
  • EMBEDDED KITS
    • MTech Embedded Kits
    • BTech Embedded Kits
  • PROJECTS+
  • PUBLISHING
    • Research Publishing
    • Authors Guidelines
    • Publishing Policy
  • CONTACT US

Project Enquiry

  1. You are here:  
  2. Home
  3. Micro & Nano Letters
  4. Modelling of conductive atomic force microscope probes for scanning tunnelling microscope operation
Details
Category: Micro & Nano Letters
By MTech Projects
MTech Projects
30.May
Hits: 7

Modelling of conductive atomic force microscope probes for scanning tunnelling microscope operation

PROJECT TITLE :

Modelling of conductive atomic force microscope probes for scanning tunnelling microscope operation

ABSTRACT:

A comprehensive model is proposed that can be used to select a proper conductive atomic force microscopy (CAFM) probe for use in stable scanning tunnelling microscopy (STM) operation. This type of operation mode could be useful for scanning and patterning heterogeneous surfaces with both conductive and insulating parts using electrical principles in a non-contact fashion. The model includes elastic contact deformation, intermolecular forces, electrostatic attraction and tunnelling current generation between the tip and the sample and the snap-into contact criterion of the probe. Using the model, snap-into contact distances of the probes with varying stiffness values under different bias voltages are found, and is verified with experiments. It is shown that, for a given sample and tip materials, an optimal bias voltage for STM operation with CAFM cantilevers exists. The results also show that, to successfully utilise CAFM probes as STM end-effectors, there is a minimum normal stiffness limit for a given bias voltage. For operation on metal surfaces using metal-coated probes with tip radius values smaller than 50 nm, the model predicts that probes with high stiffness values ( 24 N/m) enable both STM and AFM operations reliably with potential resolution reduction in AFM force sensing. The model also implies that probes with longer tips are better for minimising the electrostatic attraction between the cantilever and the substrate. The model would help researchers to select proper CAFM probes, which could enable simultaneous AFM and STM imaging and manipulation capabilities for tip-based nanofabrication applications.

Did you like this research project?

To get this research project Guidelines, Training and Code... Click Here

  • Comparative study of polyvinylidene fluoride nanofibrous membranes prepared by continuous near-field and conventional electrospinning processes
  • Silicon-on-insulator-based microsolid propellant thruster array
  • Photolithographically definable SU-8–alumina composite for W-band dielectric resonator antennas
  • Effective method for high-throughput manufacturing of ultrafine fibres via needleless centrifugal spinning
  • Gamma radiation synthesis of plasmonic nanoparticles for dark field cell imaging
  • Effect of mechanical milling on the structural and dielectric properties of BaTiO3 powders
  • Surface chemical functionalisation of epoxy photoresist-based microcantilevers with organic-coated TiO2 nanocrystals
  • Preparation and photocatalytic properties of a visible light responsive and magnetically separated photocatalyst of γ-Fe2O3/SiO2/GSs/TiO2
  • Computing Interarea Oscillation Modes of Large-Scale Power Systems Using Two-Sided Jacobi-Davidson Method
  • Dark Current Transport and Avalanche Mechanism in HgCdTe Electron-Avalanche Photodiodes
Previous article: Low-impedance shielded tip piezoresistive probe enables portable microwave impedance microscopy Low-impedance shielded tip piezoresistive probe enables portable microwave impedance microscopy Next article: In situ quantification of electrical isolation in STM-fabricated TiOx nanostructures In situ quantification of electrical isolation in STM-fabricated TiOx nanostructures
COMPUTER SCIENCE PROJECTS ELECTRONICS PROJECTS ELECTRICAL PROJECTS EMBEDDED PROJECTS MECHANICAL PROJECTS

sell academic m.tech, btech and be projects online

sell academic m.tech, btech and be projects online

Academic Final Year Projects

QUICK LINKS

  • Python Projects With Source Code
  • Java Projects With Source Code
  • Android Projects With Source Code
  • Signal Processing
  • Digital Image Processing
  • VLSI Projects Using Verilog
  • IEEE Projects on Power Systems
  • IEEE Power Electronics
SUPPORT
+91 9573777164
9:00am - 6:00pm IST
info@mtechprojects.com

Navigate

  • ABOUT
  • TESTIMONIALS
  • FIND A DEALER
  • CAREERS

CONTACT

  • CONTACT
  • FAQ
  • RESOURCES
  • EMAIL US

Useful links

  • REFUND & RETURN POLICY
  • PRIVACY POLICIES

Support

  • FACEBOOK
  • TWITTER
  • PINTEREST
  • GOOGLE PLUS

Disclaimer : MTech Projects, is not associated or affiliated with IEEE, in any way. The mentioned IEEE Projects here are student projects inspired by ideas from IEEE publications, not projects conducted by or associated with IEEE.

Talk to us?

Copyright © 2026 MTech Projects. All Rights Reserved.