0
Your cart

Your cart is empty

Browse All Departments
  • All Departments
Price
  • R2,500 - R5,000 (2)
  • -
Status
Brand

Showing 1 - 2 of 2 matches in All Departments

Scanning SQUID Microscope for Studying Vortex Matter in Type-II Superconductors (Hardcover, 2012 ed.): Amit Finkler Scanning SQUID Microscope for Studying Vortex Matter in Type-II Superconductors (Hardcover, 2012 ed.)
Amit Finkler
R2,624 Discovery Miles 26 240 Ships in 18 - 22 working days

PMCommon methods of local magnetic imaging display either a high spatial resolution and relatively poor field sensitivity (MFM, Lorentz microscopy), or a relatively high field sensitivity but limited spatial resolution (scanning SQUID microscopy). Since the magnetic field of a nanoparticle or nanostructure decays rapidly with distance from the structure, the achievable spatial resolution is ultimately limited by the probe-sample separation. This thesis presents a novel method for fabricating the smallest superconducting quantum interference device (SQUID) that resides on the apex of a very sharp tip. The nanoSQUID-on-tip displays a characteristic size down to 100 nm and a field sensitivity of 10 -3 Gauss/Hz (1/2). A scanning SQUID microsope was constructed by gluing the nanoSQUID-on-tip?? to a quartz tuning-fork. This enabled the nanoSQUID to be scanned within nanometers of the sample surface, providing simultaneous images of sample topography and the magnetic field distribution. This microscope represents a significant improvement over the existing scanning SQUID techniques and is expected to be able to image the spin of a single electro

Scanning SQUID Microscope for Studying Vortex Matter in Type-II Superconductors (Paperback, 2012 ed.): Amit Finkler Scanning SQUID Microscope for Studying Vortex Matter in Type-II Superconductors (Paperback, 2012 ed.)
Amit Finkler
R2,595 Discovery Miles 25 950 Ships in 18 - 22 working days

Common methods of local magnetic imaging display either a high spatial resolution and relatively poor field sensitivity (MFM, Lorentz microscopy), or a relatively high field sensitivity but limited spatial resolution (scanning SQUID microscopy). Since the magnetic field of a nanoparticle or nanostructure decays rapidly with distance from the structure, the achievable spatial resolution is ultimately limited by the probe-sample separation. This thesis presents a novel method for fabricating the smallest superconducting quantum interference device (SQUID) that resides on the apex of a very sharp tip. The nanoSQUID-on-tip displays a characteristic size down to 100 nm and a field sensitivity of 10^-3 Gauss/Hz^(1/2). A scanning SQUID microsope was constructed by gluing the nanoSQUID-on-tip to a quartz tuning-fork. This enabled the nanoSQUID to be scanned within nanometers of the sample surface, providing simultaneous images of sample topography and the magnetic field distribution. This microscope represents a significant improvement over the existing scanning SQUID techniques and is expected to be able to image the spin of a single electron.

Free Delivery
Pinterest Twitter Facebook Google+
You may like...
Giraffe Is Lost
Roger Priddy Board book  (1)
R165 R150 Discovery Miles 1 500
I Can Be Kind
Board book R199 R181 Discovery Miles 1 810
Old Macdonald Had A Farm
Toy R385 Discovery Miles 3 850
See, Touch, Feel - A First Sensory Book…
Roger Priddy Board book  (1)
R185 R168 Discovery Miles 1 680
Grammatical and Syntactical Approaches…
Juhyun Lee, Michael J. Ostwald Hardcover R5,315 Discovery Miles 53 150
The System Designer's Guide to VHDL-AMS…
Peter J Ashenden, Gregory D. Peterson, … Paperback R2,281 Discovery Miles 22 810
Customizable Embedded Processors, Volume…
Paolo Ienne, Rainer Leupers Hardcover R1,627 Discovery Miles 16 270
Computing in Communication Networks…
Frank H. P. Fitzek, Fabrizio Granelli, … Paperback R2,667 Discovery Miles 26 670
Elevate Tarot Kit
Hinkler Pty Ltd Kit R199 R184 Discovery Miles 1 840
Advances in Computers, Volume 105
Atif Memon Hardcover R3,927 Discovery Miles 39 270

 

Partners