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Optical characterization of ferromag...
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Zhao, Haibin.
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Optical characterization of ferromagnetic heterostructure interfaces and thin films.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Optical characterization of ferromagnetic heterostructure interfaces and thin films./
作者:
Zhao, Haibin.
面頁冊數:
127 p.
附註:
Source: Dissertation Abstracts International, Volume: 67-06, Section: B, page: 3196.
Contained By:
Dissertation Abstracts International67-06B.
標題:
Physics, Electricity and Magnetism. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3222151
ISBN:
9780542746369
Optical characterization of ferromagnetic heterostructure interfaces and thin films.
Zhao, Haibin.
Optical characterization of ferromagnetic heterostructure interfaces and thin films.
- 127 p.
Source: Dissertation Abstracts International, Volume: 67-06, Section: B, page: 3196.
Thesis (Ph.D.)--The College of William and Mary, 2006.
This thesis presents optical characterizations of interfaces in ferromagnetic heterostructures and thin films used for spin polarized electronic devices. In these experiments, femtosecond laser spectroscopies are exploited to investigate the interface magnetization reversal, spin precession, and band offset, which are crucial in determining the performances of spintronic devices.
ISBN: 9780542746369Subjects--Topical Terms:
1019535
Physics, Electricity and Magnetism.
Optical characterization of ferromagnetic heterostructure interfaces and thin films.
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Source: Dissertation Abstracts International, Volume: 67-06, Section: B, page: 3196.
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Thesis (Ph.D.)--The College of William and Mary, 2006.
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This thesis presents optical characterizations of interfaces in ferromagnetic heterostructures and thin films used for spin polarized electronic devices. In these experiments, femtosecond laser spectroscopies are exploited to investigate the interface magnetization reversal, spin precession, and band offset, which are crucial in determining the performances of spintronic devices.
520
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First, magnetization-induced second-harmonic-generation (MSHG) is applied to study interface magnetism in a hybrid structure containing a noncentrosymmetric semiconductor---Fe/AlGaAs. The reversal process of Fe interface layer magnetization is compared with the bulk magnetization reversal. In Fe/AlGaAs (001), the interface magnetization is found to be decoupled from the bulk magnetization based on the different switching characteristics---single step switching occurs at the interface layer, whereas two-jump switching occurs in the bulk. In contrast, the interface layer in Fe/AlGaAs (110) is rigidly coupled with the bulk Fe, indicating a strong impact of electronic structure on the magnetic interaction despite the same chemical composition. Furthermore, a time-resolved MSHG study demonstrates a coherent interface magnetization precession in Fe/AlGaAs (001), implying the feasibility of fast precessional control of interfacial spin. The interface magnetization precession exhibits a higher frequency and opposite phase for a given applied field compared to the bulk magnetization precession.
520
$a
Second, uniform magnetization precession in the Lac0.67Ca 0.33MnO3 (LCMO) and La0.67Sr0.33MnO 3 (LSMO) films grown on different substrates are investigated by time-resolved magneto-optic Kerr effect. The parameters of magnetic anisotropy are determined from the field dependence of the precession frequency. The strain-free LCMO films grown on NdGaO3 exhibit a uniaxial in-plane anisotropy induced by the tilting of the oxygen octahedra in NdGaO3 An easy-plane magnetic anisotropy is found in the tensile-strained films grown on SrTiO 3, whereas the compressive-strained film grown on LaAlO3 exhibits an easy normal-to-plane axis.
520
$a
Third, a table-top internal photoemission system is developed to measure the band offsets across semiconductor heterointerfaces by utilizing an optical parametric amplifier as the bright light source. The conduction band offsets DeltaE c = 660 meV and 530 meV at the CdCr2Se4-GaAs and CdCrZSe4-ZnSe interfaces are determined from the threshold energies of the photocurrent spectrum. The band offset is shown to be reduced by engineering the interface bonding and stoichiometry.
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School code: 0261.
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http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3222151
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