Influence of Repulsive and Attractive Potentials on the Energy Localization in 1D Morse Lattice with an Impurity : Condensed Matter: Structure, etc.
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概要
- 論文の詳細を見る
Molecular dynamics simulations have been carried out to investigate the energy localization in a one-dimensional Morse lattice with an impurity. The energy distribution around the impurity site is studied. It shows that the potential energy localization is only limited to the impurity and its nearest neighboring particles. Influence of the repulsive and attractive parts of the potential on the energy localization around an impurity has also been studied. The results show that at intermediate and high temperatures the repulsive potential dominates the quantitative behavior of the energy localization of the impurity. The attractions are manifested primarily in the low temperature range, but this effect decreases as the temperature increases and is almost negligible at high temperatures. They also show that in thermal equilibrium, the average potential energy of the impurity increases with decreasing repulsion stiffness, and decreases with reduced attraction one. The results are explained by the soliton fusion theory of a Toda lattice.
- 社団法人日本物理学会の論文
- 2000-09-15
著者
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Huang Sheng-you
Department Of Physics Wuhan University
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ZOU Xian-wu
Department of Physics, Wuhan University
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Jin Zhun-zhi
Department Of Physics Wuhan University
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ZHANG Wen-Bing
Department of Physics, Wuhan University
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Zhang Wen-bing
Department Of Physics Wuhan University
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Zou Xian-wu
Department Of Physics Wuhan University
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