PREDICTION OF CRYSTAL-STRUCTURES FROM CRYSTAL-CHEMISTRY RULES BY SIMULATED ANNEALING

被引:226
作者
PANNETIER, J
BASSASALSINA, J
RODRIGUEZCARVAJAL, J
CAIGNAERT, V
机构
[1] INST CIENCIA MAT BARCELONA,E-08028 BARCELONA,SPAIN
[2] INST SCI MAT & RAYONNEMENT,CRISTALLOG & SCI MAT LAB,F-14032 CAEN,FRANCE
关键词
D O I
10.1038/346343a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
THE prediction of the structure of inorganic crystalline solids from the knowledge of their chemical composition is still a largely unresolved problem1-3. The usual approach to this problem is to minimize, for a selection of candidate models, the potential energy of the system with respect to the structural parameters of these models: the solution is the arrangement that comes out lowest in energy. Methods using this procedure may differ in the origin (ab initio or empirical) of the interatomic potentials used, but they usually restrict themselves to optimizing a structural arrangement within the constraints of given symmetry and bond topology. As a result, they do not truly address the problem of predicting the unknown structure of a real compound. The method we describe here is an attempt at solving the following problem: given the chemical composition of a crystalline compound and the values of its unit-cell parameters, find its structure (topology and bond distances) by optimizing the arrangement of ions, atoms or molecules in accordance with a set of prescribed rules. The procedure uses simple, empirical crystal chemistry arguments (Pauling's principles for ionic compounds4) and a powerful stochastic search procedure, known as simulated annealing5 to identify the best atomic model or models. We discuss the potential of the method for structure determination and refinement, using results obtained for several known inorganic structures, and by the determination of a previously unknown structure. Although the approach is limited to the case of inorganic compounds, it is nevertheless very general, and would apply to any crystalline structure provided that the principles governing the architecture of the solid can be properly described. © 1990 Nature Publishing Group.
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页码:343 / 345
页数:3
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