Thermodynamic stability of boron: The role of defects and zero point motion

被引:150
作者
van Setten, Michiel J.
Uijttewaal, Matthe A.
de Wijs, Gilles A.
de Groot, Robert A.
机构
[1] Radboud Univ Nijmegen, Inst Mol & Mat, Fac Sci, NL-6525 ED Nijmegen, Netherlands
[2] Univ Groningen, MSC, Solid State Chem Lab, NL-9747 AG Groningen, Netherlands
关键词
D O I
10.1021/ja0631246
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Its low weight, high melting point, and large degree of hardness make elemental boron a technologically interesting material. The large number of allotropes, mostly containing over a hundred atoms in the unit cell, and their difficult characterization challenge both experimentalists and theoreticians. Even the ground state of this element is still under discussion. For over 30 years, scientists have attempted to determine the relative stability of alpha- and beta-rhombohedral boron. We use density functional calculations in the generalized gradient approximation to study a broad range of possible beta-rhombohedral structures containing interstitial atoms and partially occupied sites within a 105 atoms framework. The two most stable structures are practically degenerate in energy and semiconducting. One contains the experimental 320 atoms in the hexagonal unit cell, and the other contains 106 atoms in the triclinic unit cell. When populated with the experimental 320 electrons, the 106 atom structure exhibits a band gap of 1.4 eV and an in-gap hole trap at 0.35 eV above the valence band, consistent with known experiments. The total energy of these two structures is 23 meV/B lower than the original 105 atom framework, but it is still 1 meV/B above the R phase. Adding zero point energies finally makes the, phase the ground state of elemental boron by 3 meV/B. At finite temperatures, the difference becomes even larger.
引用
收藏
页码:2458 / 2465
页数:8
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