Università degli Studi di Messina, Dipartimento di Fisica, Contrada Papardo, Messina, Italy.
Phys Rev Lett. 2011 Jun 10;106(23):235701. doi: 10.1103/PhysRevLett.106.235701.
We present a Monte Carlo simulation study of the phase behavior of two-dimensional classical particles repelling each other through an isotropic Gaussian potential. As in the analogous three-dimensional case, a reentrant-melting transition occurs upon compression for not too high temperatures, along with a spectrum of waterlike anomalies in the fluid phase. However, in two dimensions melting is a continuous two-stage transition, with an intermediate hexatic phase which becomes increasingly more definite as pressure grows. All available evidence supports the Kosterlitz-Thouless-Halperin-Nelson-Young scenario for this melting transition. We expect that such a phenomenology can be checked in confined monolayers of charge-stabilized colloids with a softened core.
我们呈现了一项二维各向同性高斯排斥势下二维经典粒子相行为的蒙特卡罗模拟研究。与类似的三维情况一样,在不太高的温度下,随着流体相中出现一系列类水异常现象,压缩会发生再入熔化转变。然而,在二维中熔化是一个连续的两阶段转变,存在一个中间的近晶相,随着压力的增加,其变得越来越确定。所有现有证据都支持这种熔化转变的科斯特利茨-图尔勒-哈珀林-纳尔逊-杨情景。我们预计,在具有软化核心的电荷稳定胶体单层中,可以检验这种熔化转变的现象。