Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys

<p> Characterization of magnetic domain structure is essential to understand and manipulate the magnetic properties of materials. In this thesis, we have utilized Lorentz Transmission Electron Microscopy (LTEM) in combination with image simulations based on micromagnetic models, to investigate...

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Main Author: Kashyap, Isha
Language:EN
Published: Carnegie Mellon University 2018
Subjects:
Online Access:http://pqdtopen.proquest.com/#viewpdf?dispub=10827469
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spelling ndltd-PROQUEST-oai-pqdtoai.proquest.com-108274692018-08-16T16:05:43Z Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys Kashyap, Isha Engineering|Nanoscience|Materials science <p> Characterization of magnetic domain structure is essential to understand and manipulate the magnetic properties of materials. In this thesis, we have utilized Lorentz Transmission Electron Microscopy (LTEM) in combination with image simulations based on micromagnetic models, to investigate the magnetic domain structure of a unique nano-chessboard structure consisting of L1<i> 0</i> and L1<sub>2</sub> phases in a Co<sub>40</sub>Pt<sub>60</sub> alloy. We have shown high-resolution LTEM images of nano-size magnetic features acquired through spherical aberration correction in Lorentz Fresnel mode. Phase reconstructions based on the transport of intensity equation has been carried out to fully understand the magnetic domain structure and to extract quantitative information, including direction of magnetic induction and magnetic domain wall width, from the Lorentz TEM images. The experimental Fresnel images of the nano-chessboard structure show zig-zag shaped magnetic domain walls at the inter-phase boundaries between L1<i>0</i> and L1<sub>2</sub> phases. A circular magnetization distribution with vortex and anti-vortex type arrangement is evident in the phase reconstructed magnetic induction maps as well as simulated maps. The magnetic contrast in experimental LTEM images has been properly interpreted with the help of magnetic induction maps simulated for various relative electron beam-sample orientations inside TEM. Apart from the nano-chessboard structure, this alloy shows other interesting microstructural features such as anti-phase boundaries, tweed structure, coarse L1<i>0</i> plates, and macro-twins all of which have been characterized using conventional bright field/dark field TEM imaging and compared with their respective Lorentz TEM images. The magnetic domain wall widths obtained for each microstructure has been compared and the influence of microstructure and the particle size on wall widths has been discussed.</p><p> Carnegie Mellon University 2018-08-15 00:00:00.0 thesis http://pqdtopen.proquest.com/#viewpdf?dispub=10827469 EN
collection NDLTD
language EN
sources NDLTD
topic Engineering|Nanoscience|Materials science
spellingShingle Engineering|Nanoscience|Materials science
Kashyap, Isha
Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
description <p> Characterization of magnetic domain structure is essential to understand and manipulate the magnetic properties of materials. In this thesis, we have utilized Lorentz Transmission Electron Microscopy (LTEM) in combination with image simulations based on micromagnetic models, to investigate the magnetic domain structure of a unique nano-chessboard structure consisting of L1<i> 0</i> and L1<sub>2</sub> phases in a Co<sub>40</sub>Pt<sub>60</sub> alloy. We have shown high-resolution LTEM images of nano-size magnetic features acquired through spherical aberration correction in Lorentz Fresnel mode. Phase reconstructions based on the transport of intensity equation has been carried out to fully understand the magnetic domain structure and to extract quantitative information, including direction of magnetic induction and magnetic domain wall width, from the Lorentz TEM images. The experimental Fresnel images of the nano-chessboard structure show zig-zag shaped magnetic domain walls at the inter-phase boundaries between L1<i>0</i> and L1<sub>2</sub> phases. A circular magnetization distribution with vortex and anti-vortex type arrangement is evident in the phase reconstructed magnetic induction maps as well as simulated maps. The magnetic contrast in experimental LTEM images has been properly interpreted with the help of magnetic induction maps simulated for various relative electron beam-sample orientations inside TEM. Apart from the nano-chessboard structure, this alloy shows other interesting microstructural features such as anti-phase boundaries, tweed structure, coarse L1<i>0</i> plates, and macro-twins all of which have been characterized using conventional bright field/dark field TEM imaging and compared with their respective Lorentz TEM images. The magnetic domain wall widths obtained for each microstructure has been compared and the influence of microstructure and the particle size on wall widths has been discussed.</p><p>
author Kashyap, Isha
author_facet Kashyap, Isha
author_sort Kashyap, Isha
title Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
title_short Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
title_full Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
title_fullStr Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
title_full_unstemmed Quantitative Characterization of Magnetic Domain Structure in Near Eutectoid Co40Pt60 Alloys
title_sort quantitative characterization of magnetic domain structure in near eutectoid co40pt60 alloys
publisher Carnegie Mellon University
publishDate 2018
url http://pqdtopen.proquest.com/#viewpdf?dispub=10827469
work_keys_str_mv AT kashyapisha quantitativecharacterizationofmagneticdomainstructureinneareutectoidco40pt60alloys
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