scholarly journals Outlooks for development of silicon nanoparticle memory cells

2019 ◽  
Vol 5 (4) ◽  
pp. 159-164 ◽  
Author(s):  
Igor V. Talyzin ◽  
Vladimir M. Samsonov

Phase change memory is based on changes in the optical, electrical or other properties of materials during phase transitions, e.g. an amorphous to crystalline transition. Currently existing and potential applications of this memory are primarily based on multicomponent alloys of metals and semiconductors. However single-component nanoparticles including Si ones are also of interest as promising nanosized memory cells. The potential for developing this type of memory cells is confirmed by the fact that the optical absorption index of bulk amorphous silicon is of the same order of magnitude as that of crystalline silicon. Certainly this phenomenon can hardly be implemented with a single nanoparticle the size of which is within light wavelength. Using molecular dynamics and the Stillinger-Weber potential we have studied the regularities of melting and the conditions of crystallization of silicon nanoparticles containing within 105 atoms. We have shown that cooling of nanosized silicon drops at a 0.2 TK/s rate or higher rates causes their amorphous transition whereas single-component nanosized metallic drops crystallize in molecular dynamics experiments even at a 1 TK/s rate. Further heating of amorphous silicon nanoparticles containing above 5 ∙ 104 atoms causes their crystallization in a specific temperature range from 1300 to 1400 K. We have concluded that there is a possibility of developing phase change memory cells on the basis of the above phase transitions. An amorphous transition of a nanoparticle can be achieved by its melting and further cooling to room temperature at a 0.2 TK/s rate whereas a crystalline transition, by its heating to 1300–1400 K at a 0.2 TK/s rate followed by cooling. Results of molecular dynamics experiments suggest there is a minimum silicon nanoparticle size for which the development of phase change memory cells becomes theoretically impossible at a given temperature change rate. For a 0.2 TK/s temperature change rate this minimum size is 12.4 nm (number of atoms approx. 5 ∙ 104).

2008 ◽  
Vol 93 (4) ◽  
pp. 043121 ◽  
Author(s):  
W. J. Wang ◽  
L. P. Shi ◽  
R. Zhao ◽  
K. G. Lim ◽  
H. K. Lee ◽  
...  

2020 ◽  
Vol 19 ◽  
pp. 820-828
Author(s):  
Nafisa Noor ◽  
Sadid Muneer ◽  
Raihan Sayeed Khan ◽  
Anna Gorbenko ◽  
Helena Silva

2011 ◽  
Vol 32 (12) ◽  
pp. 1737-1739 ◽  
Author(s):  
Azer Faraclas ◽  
Nicholas Williams ◽  
Ali Gokirmak ◽  
Helena Silva

2019 ◽  
Vol 8 (11) ◽  
pp. P667-P672
Author(s):  
Soo-Bum Kim ◽  
Hao Cui ◽  
Jong-Young Cho ◽  
Eun-Bin Seo ◽  
Sang-Su Yun ◽  
...  

2011 ◽  
Vol 98 (24) ◽  
pp. 242106 ◽  
Author(s):  
D. Q. Huang ◽  
X. S. Miao ◽  
Z. Li ◽  
J. J. Sheng ◽  
J. J. Sun ◽  
...  

2016 ◽  
Vol 49 (38) ◽  
pp. 385101
Author(s):  
Qiang He ◽  
Zhen Li ◽  
Chang Liu ◽  
Xiang-ru Meng ◽  
Ju-hong Peng ◽  
...  

Author(s):  
Raihan S. Khan ◽  
ABM Hasan Talukder ◽  
Faruk Dirisaglik ◽  
Ali Gokirmak ◽  
Helena Silva

2020 ◽  
Vol 67 (10) ◽  
pp. 4228-4233
Author(s):  
Anabel De Proft ◽  
Daniele Garbin ◽  
Gabriele Luca Donadio ◽  
Hubert Hody ◽  
Thomas Witters ◽  
...  

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