Tight-binding modelling of materials

被引:417
作者
Goringe, CM
Bowler, DR
Hernandez, E
机构
[1] Univ Oxford, Dept Mat, Oxford OX1 3PH, England
[2] Univ Keele, Dept Phys, Keele ST5 5BG, Staffs, England
关键词
D O I
10.1088/0034-4885/60/12/001
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The tight-binding method of modelling materials lies between the very accurate, very expensive, ab initio methods and the fast but limited empirical methods. When compared with ab initio methods, tight-binding is typically two to three orders of magnitude faster, but suffers from a reduction in transferability due to the approximations made; when compared with empirical methods, tight-binding is two to three orders of magnitude slower, but the quantum mechanical nature of bonding is retained, ensuring that the angular nature of bonding is correctly described far from equilibrium structures. Tight-binding is therefore useful for the large number of situations in which quantum mechanical effects are significant, but the system size makes ab initio calculations impractical. In this paper we review the theoretical basis of the tight-binding method, and the range of approaches used to exactly or approximately solve the tight-binding equations. We then consider a representative selection of the huge number of systems which have been studied using tight-binding, identifying the physical characteristics that favour a particular tight-binding method, with examples drawn from metallic, semiconducting and ionic systems. Looking beyond standard tight-binding methods we then review the work which has been done to improve the accuracy and transferability of tight-binding, and moving in the opposite direction we consider the relationship between tight-binding and empirical models.
引用
收藏
页码:1447 / 1512
页数:66
相关论文
共 353 条
[71]   MAGNETIC-ANISOTROPY OF SMALL CLUSTERS AND VERY THIN TRANSITION-METAL FILMS [J].
DREYSSE, H ;
DORANTESDAVILA, J ;
PICK, S ;
PASTOR, GM .
JOURNAL OF APPLIED PHYSICS, 1994, 76 (10) :6328-6330
[72]  
DUCASTELLE F, 1970, J PHYS CHEM SOLIDS, V31, P129
[73]   THEORETICAL CALCULATION FOR A ZNSE-GE(110) HETEROJUNCTION WITH AN ULTRATHIN INTRALAYER [J].
DURAN, JC ;
MUNOZ, A ;
FLORES, F .
PHYSICAL REVIEW B, 1987, 35 (14) :7721-7724
[74]   SEMIEMPIRICAL TIGHTBINDING BANDSTRUCTURES FOR II-VI ZINCBLENDE COMPOUNDS [J].
EKPENUMA, SN ;
MYLES, CW .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1990, 51 (02) :93-100
[75]   SURFACE ALLOYING IN METAL-ON-METAL EPITAXIAL-GROWTH [J].
ENGDAHL, C ;
STOLTZE, P ;
JACOBSEN, KW ;
NORSKOV, JK ;
SKRIVER, HL ;
ALDEN, M .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A, 1994, 12 (04) :1787-1789
[76]   DEFECTS, TIGHT-BINDING, AND 1ST-PRINCIPLES MOLECULAR-DYNAMICS SIMULATIONS ON A-SI [J].
FEDDERS, PA ;
DRABOLD, DA ;
KLEMM, S .
PHYSICAL REVIEW B, 1992, 45 (08) :4048-4055
[77]   HYDROGEN AND DEFECTS IN 1ST-PRINCIPLES MOLECULAR-DYNAMICS-MODELED A-SI-H [J].
FEDDERS, PA ;
DRABOLD, DA .
PHYSICAL REVIEW B, 1993, 47 (20) :13277-13282
[78]   Reconstruction of the Si(113) surface [J].
Feng, YP ;
Wee, TH ;
Ong, CK ;
Poon, HC .
PHYSICAL REVIEW B, 1996, 54 (07) :4766-4773
[79]   Electronic structure of (001)(AlAs)(k)(GaAs)(l)(AlAs)(m)(GaAs)(n) superlattices [J].
FernandezAlvarez, L ;
Monsivais, G ;
Velasco, VR .
JOURNAL OF PHYSICS-CONDENSED MATTER, 1996, 8 (45) :8859-8867
[80]  
FINNIS MW, 1986, PHILOS MAG A, V53, P161