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Emergent reduction of electronic state dimensionality in dense ordered Li-Be alloys

机译:致密有序Li-Be合金中电子态尺寸的紧急降低

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High pressure is known to influence electronic structure and crystal packing, and can in some cases even induce compound formation between elements that do not bond under ambient conditions. Here we present a computational study showing that high pressure fundamentally alters the reactivity of the light elements lithium (Li) and beryllium (Be), which are the first of the metals in the condensed state and immiscible under normal conditions. We identify four stoichiometric Li_xBe_(1-x) compounds that are stable over a range of pressures, and find that the electronic density of states of one of them displays a remarkable steplike feature near the bottom of the valence band and then remains almost constant with increasing energy. These characteristics are typical of a quasi-two-dimensional electronic structure, the emergence of which in a three-dimensional environment is rather unexpected. We attribute this observation to large size differences between the ionic cores of Li and Be: as the density increases, the Li cores start to overlap and thereby expel valence electrons into quasi-two-dimensional layers characterized by delocalized free-particle-like states in the vicinity of Be ions.
机译:已知高压会影响电子结构和晶体堆积,并且在某些情况下甚至会导致在环境条件下不结合的元素之间形成化合物。在这里,我们进行了一项计算研究,结果表明,高压从根本上改变了轻元素锂(Li)和铍(Be)的反应性,这些轻元素锂是第一类处于冷凝状态且在正常条件下不可混溶的金属。我们确定了在一定压力范围内稳定的四种化学计量的Li_xBe_(1-x)化合物,发现其中一个的电子态的电子密度在价带底部附近显示出显着的阶梯状特征,然后在增加能量。这些特征是准二维电子结构的典型特征,其在三维环境中的出现是非常出乎意料的。我们将此观察结果归因于Li和Be离子核之间的大尺寸差异:随着密度的增加,Li核开始重叠,从而将价电子驱逐到以二维纳米粒子为特征的准二维层中,该纳米粒子具有离域的自由粒子状态Be离子附近。

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