Yang Xigui, Yao Mingguang, Wu Xiangying, Liu Shijie, Chen Shuanglong, Yang Ke, Liu Ran, Cui Tian, Sundqvist Bertil, Liu Bingbing
State Key Lab of Superhard Materials, Jilin University, Changchun 130012, China.
Shanghai Synchrotron Radiation Facilities, Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201204, China.
Phys Rev Lett. 2017 Jun 16;118(24):245701. doi: 10.1103/PhysRevLett.118.245701. Epub 2017 Jun 15.
Design and synthesis of new carbon allotropes have always been important topics in condensed matter physics and materials science. Here we report a new carbon allotrope, formed from cold-compressed C_{70} peapods, which most likely can be identified with a fully sp^{3}-bonded monoclinic structure, here named V carbon, predicted from our simulation. The simulated x-ray diffraction pattern, near K-edge spectroscopy, and phonon spectrum agree well with our experimental data. Theoretical calculations reveal that V carbon has a Vickers hardness of 90 GPa and a bulk modulus ∼400 GPa, which well explains the "ring crack" left on the diamond anvils by the transformed phase in our experiments. The V carbon is thermodynamically stable over a wide pressure range up to 100 GPa, suggesting that once V carbon forms, it is stable and can be recovered to ambient conditions. A transition pathway from peapod to V carbon has also been suggested. These findings suggest a new strategy for creating new sp^{3}-hybridized carbon structures by using fullerene@nanotubes carbon precursor containing odd-numbered rings in the structures.
新型碳同素异形体的设计与合成一直是凝聚态物理和材料科学中的重要课题。在此,我们报道一种由冷压缩C₇₀豆荚状结构形成的新型碳同素异形体,它很可能具有完全sp³键合的单斜结构,我们将其命名为V碳,这是根据我们的模拟预测得到的。模拟的X射线衍射图谱、近K边光谱和声子谱与我们的实验数据吻合良好。理论计算表明,V碳的维氏硬度为90 GPa,体模量约为400 GPa,这很好地解释了我们实验中转变相在金刚石砧座上留下的“环形裂纹”。V碳在高达100 GPa的宽压力范围内具有热力学稳定性,这表明一旦V碳形成,它是稳定的,并且可以恢复到环境条件。我们还提出了从豆荚状结构到V碳的转变途径。这些发现为利用结构中含有奇数环的富勒烯@纳米管碳前驱体来创建新的sp³杂化碳结构提供了一种新策略。