Hamilton Brenden W, Germann Timothy C
Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.
J Phys Chem Lett. 2023 Sep 28;14(38):8584-8589. doi: 10.1021/acs.jpclett.3c01991. Epub 2023 Sep 19.
The manifestation of intramolecular strains in covalent systems is widely known to accelerate chemical reactions and open alternative reaction paths. This process is moderately well understood for isolated molecules and unimolecular processes. However, in condensed matter processes such as phase transformations, material properties and structure may influence typical mechanochemical effects. Therefore, we utilize steered molecular dynamics to induce out of plane strains in graphite and compress the system under a constant strain rate to induce phase transformation. We show that the out of plane strain allows phase transformations to initiate at small amounts of compressive strain. However, in contrast to typical mechanochemical results, the sum of compressive and out of plane work needed to form a diamond has a local minimum due to altered defect formation processes during phase transformation. Additionally, these altered processes slow the kinetics of the phase transformation, taking longer from initiation to total material transformation.
共价体系中分子内应变的表现广为人知,它能加速化学反应并开辟替代反应路径。对于孤立分子和单分子过程,这个过程已得到一定程度的理解。然而,在诸如相变等凝聚态物质过程中,材料特性和结构可能会影响典型的机械化学效应。因此,我们利用引导分子动力学在石墨中诱导面外应变,并在恒定应变速率下压缩系统以诱导相变。我们表明,面外应变使得相变能够在少量压缩应变下启动。然而,与典型的机械化学结果不同,由于相变过程中缺陷形成过程的改变,形成金刚石所需的压缩功和面外功之和存在局部最小值。此外,这些改变后的过程减缓了相变动力学,从启动到材料完全转变所需的时间更长。