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Twin memory and twin amnesia in anorthoclase

机译:双记忆和双失忆症

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Many natural minerals and synthetic materials display twin microstructures resulting from displacive phase transitions. These microstructures may be removed temporarily from the sample by heating above the relevant transition temperature, though the twinning generally returns on subsequent cooling.In anorthoclase, the spatial distributions of twins before and after brief annealing above T_c are often identical This property appears to be a common feature in many materials which undergo ferroelastic phase transitions, and is known as twin memory'. The atomic mechanisms responsible for this twin memory may be investigated by studying the annealing regimes required to remove the memory effect; how long must a sample be annealed, and at what temperature, to induce 'twin amnesiaHigh-resolution X-ray diffraction (XRD) has been used to investigate twin memory and twin amnesia in anorthoclase. In anorthoclase. the primary constraint on twin amnesia is thermodynamic, rather than kinetic. The critical temperature to induce amnesia correlates well with the top of the (Na, K) solvus in disordered alkali feldspar. For this reason. the proposed mechanism for twin memory involves the segregation of alkali cations in thin lamellae at the twin boundaries.
机译:许多天然矿物和合成材料显示出双相微观结构,这是由相变相变引起的。尽管双晶通常会在随后的冷却过程中恢复,但可以通过在相关的转变温度以上加热来暂时将这些微结构从样品中去除。在正斜波石中,T_c以上短暂退火前后双晶的空间分布通常是相同的。在许多经历铁弹性相变的材料中,其共同特征是“双记忆”。可以通过研究消除记忆效应所需的退火机制来研究造成这种双记忆的原子机制。样本必须退火多长时间,以及在什么温度下退火才能诱发双胞胎失忆症高分辨率X射线衍射(XRD)已被用于研究在正石棉石中的双记忆和双胞胎失忆症。在正石棉中。双胞胎健忘症的主要限制因素是热力学,而不是动力学。诱发失忆的临界温度与无序长石中(Na,K)溶解度的顶部高度相关。为此原因。提出的双记忆机制涉及在双晶边界处薄薄片中的碱性阳离子的分离。

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