Institut für Theoretische Physik II: Weiche Materie, Heinrich Heine-Universität Düsseldorf, Universitätsstraße 1, 40225 Düsseldorf, Germany.
School of Applied Sciences, KIIT University, Bhubaneswar 751024, India.
Soft Matter. 2017 Jul 21;13(27):4689-4697. doi: 10.1039/c7sm00623c. Epub 2017 Jun 14.
We present a framework to segregate the roles of elastic and non-elastic deformations in the examination of real-space experiments of solid-solid Martensitic transitions. The Martensitic transformation of a body-centred-tetragonal (BCT) to a body-centred-orthorhombic (BCO) crystal structure has been studied in a model system of micron-scale ionic microgel colloids (P. S. Mohanty, P. Bagheri, S. Nöjd, A. Yethiraj and P. Schurtenberger, Phys. Rev. X, 2015, 5, 011030). Non-affine fluctuations, i.e., displacement fluctuations that do not arise from purely elastic (affine) deformations, are detected in particle configurations acquired from the experiment. Tracking these fluctuations serves as a highly sensitive tool in signaling the onset of the Martensitic transition and precisely locating particle rearrangements occurring at length scales of a few particle diameters. Particle rearrangements associated with non-affine displacement modes become increasingly favorable during the transformation process. The nature of the displacement fluctuation modes that govern the transformation are shown to be different from those predominant in an equilibrium crystal. We show that BCO crystallites formed through shear may, remarkably, co-exist with those resulting from local rearrangements within the same sample.
我们提出了一个框架,用于分离在体相实验中弹性和非弹性变形在固态马氏体转变研究中的作用。在微米尺度的离子微凝胶胶体模型体系中,已经研究了体心四方(BCT)到体心正交(BCO)晶体结构的马氏体转变(P. S. Mohanty、P. Bagheri、S. Nöjd、A. Yethiraj 和 P. Schurtenberger,Phys. Rev. X,2015,5,011030)。在实验中获取的颗粒构型中检测到非仿射涨落,即不是由纯弹性(仿射)变形引起的位移涨落。跟踪这些涨落是信号马氏体转变开始并精确定位发生在几个颗粒直径长度尺度上的颗粒重排的高度敏感工具。在转变过程中,与非仿射位移模式相关的颗粒重排变得越来越有利。控制转变的位移涨落模式的性质与平衡晶体中的主导模式不同。我们表明,通过剪切形成的 BCO 微晶可以与同一样品中局部重排产生的微晶共存。