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Irregular variations in the melting point of size-selected atomic clusters

机译:尺寸选择的原子团簇熔点的不规则变化

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摘要

Small particles have a lower melting point than bulk material. The physical cause lies in the fact that small particles have a higher proportion of surface atoms than larger particles—surface atoms have fewer nearest neighbours and are thus more weakly bound and less constrained in their thermal motion than atoms in the body of a material. The reduction in the melting point has been studied extensively for small particles or clusters on supporting surfaces. One typically observes a linear reduction of the melting point as a function of the inverse cluster radius. Recently, the melting point of a very small cluster, containing exactly 139 atoms, has been measured in a vacuum using a technique in which the cluster acts as its own nanometre-scale calorimeter. Here we use the same technique to study ionized sodium clusters containing 70 to 200 atoms. The melting points of these clusters are on average 33% (120 K) lower than the bulk material; furthermore, we observe surprisingly large variations in the melting point (of ±30K) with changing cluster size, rather than any gradual trend. These variations cannot yet be fully explained theoretically.
机译:小颗粒的熔点低于块状材料。物理原因是这样的事实,即小粒子比大粒子具有更大的表面原子比例-表面原子与材料主体中的原子相比,具有更少的最近邻居,因此其热运动更弱地绑定并且受其约束较小。对于支撑表面上的小颗粒或团簇,已经广泛研究了熔点降低的问题。通常观察到熔点随团簇半径的倒数线性降低。最近,已经使用一种将簇用作自己的纳米量热仪的技术,在真空中测量了一个非常小的簇的熔点,该簇恰好包含139个原子。在这里,我们使用相同的技术来研究包含70至200个原子的电离钠簇。这些簇的熔点平均比散装材料低33%(120 K);此外,我们观察到,随着簇尺寸的变化,熔点(±30K)出现了很大的变化,而不是任何逐渐变化的趋势。这些变化尚无法从理论上完全解释。

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