Zhang Linji, Ren Yang, Liu Xiuru, Han Fei, Evans-Lutterodt Kenneth, Wang Hongyan, He Yali, Wang Junlong, Zhao Yong, Yang Wenge
Laboratory of High Pressure Physics, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, 610031, China.
Center for High Pressure Science and Technology Advanced Research, 1690 Cailun Road, Shanghai, 201203, China.
Sci Rep. 2018 Mar 14;8(1):4558. doi: 10.1038/s41598-018-22775-y.
Amorphous sulfur was prepared by rapid compression of liquid sulfur at temperatures above the λ-transition for to preserve the high-temperature liquid structure. We conducted synchrotron high-energy X-ray diffraction and Raman spectroscopy to diagnose the structural evolution of amorphous sulfur from room temperature to post-λ-transition temperature. Discontinuous changes of the first and second peaks in atomic pair-distribution-function, g(r), were observed during the transition from amorphous to liquid sulfur. The average first-neighbor coordination numbers showed an abrupt drop from 1.92 to 1.81. The evolution of the chain length clearly shows that the transition was accompanied by polymeric chains breaking. Furthermore, a re-entry of the λ-transition structure was involved in the heating process. The amorphous sulfur, which inherits the post-λ-transition structure from its parent melts, transformed to the pre-λ-transition liquid structure at around 391 K. Upon further heating, the pre-λ-transition liquid transformed to a post-λ-transition structure through the well-known λ-transition process. This discovery offers a new perspective on amorphous sulfur's structural inheritance from its parent liquid and has implications for understanding the structure, evolution and properties of amorphous sulfur and its liquids.
通过在高于λ转变温度下快速压缩液态硫来制备非晶态硫,以保留高温液态结构。我们进行了同步加速器高能X射线衍射和拉曼光谱分析,以诊断非晶态硫从室温到λ转变后温度的结构演变。在从非晶态硫向液态硫转变过程中,观察到原子对分布函数g(r)中第一和第二峰的不连续变化。平均第一近邻配位数从1.92急剧下降到1.81。链长的演变清楚地表明,这种转变伴随着聚合物链的断裂。此外,加热过程中涉及到λ转变结构的重新出现。从其母熔体继承了λ转变后结构的非晶态硫,在约391 K时转变为λ转变前的液态结构。进一步加热时,λ转变前的液体通过众所周知的λ转变过程转变为λ转变后的结构。这一发现为非晶态硫从其母液中继承结构提供了新的视角,对理解非晶态硫及其液体的结构、演变和性质具有重要意义。