Segregation of impurities and vacancies on phase and antiphase boundaries in alloys

被引:7
作者
Belashchenko, KD
Vaks, VG
机构
[1] Kurchatov Institute Russian Scientific Center, 123182, Moscow
基金
俄罗斯基础研究基金会;
关键词
D O I
10.1134/1.558289
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The equilibrium distribution of low-concentration impurities or vacancies is investigated in the region of a coherent phase boundary or antiphase boundary in a binary alloy. A general expression for the free energy of an inhomogeneous multicomponent alloy, which generalizes the expression previously derived for a binary alloy, is presented. Explicit formulas for the impurity concentration profile c(im)(x) in terms of the distribution of the principal components of the alloy near a boundary are obtained from this expression in the mean-field and pair-cluster approximations. The shape of this profile is determined by a ''preference potential'' P, which characterizes the attraction of an impurity to one of the alloy components, as well as by the temperature T and the phase transition temperature T-c. At small values of PIT impurities segregate on a phase boundary, and the degree of this segregation, i.e, the height of the maximum of ci,(x), in the region of the boundary increases exponentially as the ratio T,IT increases. For P not equal 0 the c(im)(x) profile near a phase boundary is asymmetric, and as PIT increases, it takes on the form of a ''worn step.'' The maximum on the c(im)(x) curve then decreases, and at a certain \P\greater than or similar to T-c it vanishes. Segregation on an antiphase boundary is investigated in the case of CuZn ordering in a bcc alloy. The form of c(im)(x) near an antiphase boundary depends significantly both on the form of the potential P and on the stoichiometry of the alloy. At small P impurities segregate on an antiphase boundary, and at fairly large P ''antisegregation,'' i.e., a decrease in the impurity concentration on the antiphase boundary in comparison with the value within the antiphase domains, is also possible. (C) 1997 American Institute of Physics.
引用
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页码:390 / 398
页数:9
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