scholarly journals Steady-state radiative cooling rates for low-density, high-temperature plasmas

1977 ◽  
Vol 20 (5) ◽  
pp. 397-439 ◽  
Author(s):  
D.E. Post ◽  
R.V. Jensen ◽  
C.B. Tarter ◽  
W.H. Grasberger ◽  
W.A. Lokke
1977 ◽  
Author(s):  
D.E. Post ◽  
R.V. Jensen ◽  
C.B. Tarter ◽  
W.H. Grasberger ◽  
W.A. Lokke

2020 ◽  
Vol 12 (1) ◽  
Author(s):  
Hee Young Kwon ◽  
Kyung Mee Song ◽  
Juyoung Jeong ◽  
Ah-Yeon Lee ◽  
Seung-Young Park ◽  
...  

AbstractThe discovery of a thermally stable, high-density magnetic skyrmion phase is a key prerequisite for realizing practical skyrmionic memory devices. In contrast to the typical low-density Néel-type skyrmions observed in technologically viable multilayer systems, with Lorentz transmission electron microscopy, we report the discovery of a high-density homochiral Néel-type skyrmion phase in magnetic multilayer structures that is stable at high temperatures up to 733 K (≈460 °C). Micromagnetic simulations reveal that a high-density skyrmion phase can be stabilized at high temperature by deliberately tuning the magnetic anisotropy, magnetic field, and temperature. The existence of the high-density skyrmion phase in a magnetic multilayer system raises the possibility of incorporating chiral Néel-type skyrmions in ultrahigh-density spin memory devices. Moreover, the existence of this phase at high temperature shows its thermal stability, demonstrating the potential for skyrmion devices operating in thermally challenging modern electronic chips.


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