Non-equilibrium microwave response of YBa 2 Cu 3 O 7-δ granular thin films under magnetic fields

1999 ◽  
Vol 8 (11) ◽  
pp. 860-868
Author(s):  
Abbas A Essa ◽  
Xu Ke-xi ◽  
Zhou Shi-ping ◽  
Bao Jia-shan
2000 ◽  
Vol 10 (2) ◽  
pp. 1606-1611
Author(s):  
Ke-Xi Xu ◽  
A.A. Essa ◽  
Shi-Ping Zhou ◽  
Jia-Shan Bao

1994 ◽  
Vol 235-240 ◽  
pp. 3095-3096
Author(s):  
F. Ichikawa ◽  
T. Nishizaki ◽  
K. Yamabe ◽  
Y. Yamasaki ◽  
T. Fukami ◽  
...  

2003 ◽  
Vol 94 ◽  
pp. 257-260 ◽  
Author(s):  
Alvydas Lisauskas ◽  
Algirdas Sužiedėlis ◽  
Andžej Lučun ◽  
Antanas K. Oginskis ◽  
Jonas Gradauskas ◽  
...  

2021 ◽  
Author(s):  
Norihiro Shimoi

In this work, we have discovered a method of forming ZnO thin films with high mobility, high carrier density and low resistivity on plastic (PET) films using non-equilibrium reaction fields, even when the films are deposited without heating, and we have also found a thin film formation technique using a wet process that is different from conventional deposition techniques. The field emission electron-beam irradiation treatment energetically activates the surface of ZnO particles and decomposes each ZnO particles. The energy transfer between zinc ions and ZnO surface and the oxygen present in the atmosphere around the ZnO particles induce the oxidation of zinc. In addition, the ZnO thin films obtained in this study successfully possess high functional thin films with high electrical properties, including high hole mobility of 208.6 cm2/Vs, despite being on PET film substrates. These results contribute to the discovery of a mechanism to create highly functional oxide thin films using a simple two-dimensional process without any heat treatment on the substrate or during film deposition. In addition, we have elucidated the interfacial phenomena and crosslinking mechanisms that occur during the bonding of metal oxide particles, and understood the interfacial physical properties and their effects on the electronic structure. and surface/interface control, and control of higher-order functional properties in metal/ceramics/semiconductor composites, and contribute to the provision of next-generation nanodevice components in a broad sense.


1979 ◽  
pp. 341-348
Author(s):  
D. Valentovič ◽  
J. Červenák ◽  
S. Luby ◽  
M. L. Aldea ◽  
T. Boțilǎ

2018 ◽  
Vol 185 ◽  
pp. 11005
Author(s):  
Maria A. Shlyakhtich ◽  
Pavel V. Prudnikov

In this work we study the non-equilibrium properties of Heisenberg ferromagnetic films using Monte Carlo simulations by short-time dynamic method. By exploring the short-time scaling dynamics, we have found thickness dependency of critical exponents z, θ′ and β/v for ferromagnetic thin film. For calculating the critical exponents of ferromagnetic films we considered systems with linear size L = 128 and layers number N = 2; 4; 6; 10. Starting from initial configurations, the system was updated with Metropolis algorithm at the critical temperatures


2003 ◽  
Vol 774 ◽  
Author(s):  
Yi-yeoun Kim ◽  
Laurie B. Gower

AbstractOur biomimetic approach for fabricating organic-inorganic composites with structures similar to biominerals is based on a novel mineralization process, called the Polymer-Induced-Liquid-Precursor (PILP) process. This process enables the deposition of non-equilibrium mineral morphologies of calcite under low-temperature and aqueous-based conditions [1], including patterned thin films of calcite. We have recently found that when a surplus of acidic polymer is added, the patterned mineral films act as a secondary template for directing new crystal outgrowths, which form into complex morphologies of calcite with time, such as fibrous mats and “horsetails”. Two interdependent factors, the polymer and Ca-ion concentration, which change the local solution environment over time, appear to modulate the creation of these different structures. Such observations may provide clues for unraveling the long-standing mystery of how biological systems fabricate their sophisticated and complex morphologies.


Author(s):  
Koichi Nakao ◽  
Kunihiko Hayashi ◽  
Youichi Enomoto ◽  
Naoki Koshizuka

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