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纯碳及含氮非晶碳的从头算结构动力学

Ab initio structural dynamics of pure and nitrogen-containing amorphous carbon.

作者信息

Steele Brad A, Bastea Sorin, Kuo I-Feng W

机构信息

Lawrence Livermore National Laboratory, Physical and Life Sciences Directorate, 7000 East Ave., Livermore, California, 94550, USA.

出版信息

Sci Rep. 2023 Nov 11;13(1):19657. doi: 10.1038/s41598-023-46642-7.

Abstract

Amorphous carbon (a-C) has attracted considerable interest due to its desirable properties, which are strongly dependent on its structure, density and impurities. Using ab initio molecular dynamics simulations we show that the sp/sp content and underlying structural order of a-C produced via liquid quenching evolve at high temperatures and pressures on sub-nanosecond timescales. Graphite-like densities ([Formula: see text] 2.7 g/cc) favor the formation of layered arrangements characterized by sp disordered bonding resembling recently synthesized monolayer amorphous carbon (MAC), while at diamond-like densities ([Formula: see text] 3.3 g/cc) the resulting structures are dominated by disordered tetrahedral sp hybridization typical of diamond-like amorphous carbon (DLC). At intermediate densities the system is a highly compressible mixture of coexisting sp and sp regions that continue to segregate over 10's of picoseconds. The addition of nitrogen (20.3%) (a-CN) generates major system features similar with those of a-C, but has the unexpected effect of reinforcing the thermodynamically disfavored carbon structural motifs at low and high densities, while inhibiting phase separation in the intermediate region. At the same time, no nitrogen elimination from the carbon framework is observed above [Formula: see text] 2.8 g/cc, suggesting that nitrogen impurities are likely to remain embedded in the carbon structures during fast temperature quenches at high pressures.

摘要

非晶碳(a-C)因其理想的性能而备受关注,这些性能强烈依赖于其结构、密度和杂质。通过从头算分子动力学模拟,我们表明,通过液体淬火产生的a-C的sp/sp含量和潜在结构有序性在高温高压下在亚纳秒时间尺度上演变。类石墨密度([公式:见正文]2.7 g/cc)有利于形成层状排列,其特征是sp无序键合,类似于最近合成的单层非晶碳(MAC),而在类金刚石密度([公式:见正文]3.3 g/cc)下,所得结构主要由类金刚石非晶碳(DLC)典型的无序四面体sp杂化主导。在中间密度下,系统是共存的sp和sp区域的高度可压缩混合物,这些区域在数十皮秒内持续分离。添加氮(20.3%)(a-CN)产生与a-C相似的主要系统特征,但具有意想不到的效果,即在低密度和高密度下强化热力学上不利的碳结构基序,同时抑制中间区域的相分离。同时,在高于[公式:见正文]2.8 g/cc时未观察到碳框架中的氮消除,这表明在高压下快速温度淬火期间,氮杂质可能仍嵌入碳结构中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4862/10640601/072c4dd1551e/41598_2023_46642_Fig1_HTML.jpg

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