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Nonadiabaticity in the iron bcc to hcp phase transformation

机译:铁中的非绝热性向ccp相转变

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Iron is known to undergo a pressure-induced phase transition from the ferromagnetic (FM) body-centered-cubic (bcc) alpha-phase to the nonmagnetic (NM) hexagonal-close-packed (hcp) epsilon-phase, with a large observed pressure hysteresis whose origin is still a matter of debate. Long ago, Burgers [Physica (Amsterdam) 1, 561 (1934)] proposed an adiabatic pathway for bcc to hcp transitions involving crystal shear followed by atom shuffles. However, a quantum mechanics search in six-dimensional stress-strain space reveals a much lower energy path, where the crystal smoothly shears along the entire path while the atoms shuffle only near the transition state (TS). The energy profile for this phase transition path exhibits a cusp at the TS and closely follows bcc and hcp diabatic energy wells. Both the cusp and the overlap with diabatic energy surfaces are hallmarks of nonadiabaticity, analogous to, e.g., electron transfer (ET) reactions in liquids. Fluctuations in the positions of FM bcc iron atoms near the TS induce magnetic quenching (akin to solvent fluctuations inducing ET), which then promotes NM hcp iron formation (akin to solvent reorganization after ET). We propose that the nonadiabatic nature of this transition at the atomic scale may contribute to the observed pressure hysteresis. (c) 2008 American Institute of Physics.
机译:已知铁会经历从铁磁(FM)体心立方(bcc)α相到非磁性(NM)六方密堆积(hcp)ε相的压力诱导相变,观察到很大压力磁滞的起源尚有争议。很久以前,Burgers [Physica(Amsterdam)1,561(1934)]提出了一种从bcc到hcp转变的绝热途径,涉及晶体剪切和原子改组。但是,在六维应力应变空间中进行的量子力学搜索揭示了一条低得多的能量路径,其中晶体沿整个路径平滑地剪切,而原子仅在过渡态(TS)附近才发生随机运动。此相变路径的能量分布在TS处显示尖峰,并且紧随bcc和hcp绝热能量阱。尖峰和与非绝热能表面的重叠都是非绝热的标志,类似于例如液体中的电子转移(ET)反应。 TS附近FM bcc铁原子位置的波动会引起磁淬灭(类似于引起ET的溶剂波动),然后促进NM hcp铁的形成(类似于ET后的溶剂重组)。我们建议,这种过渡在原子尺度上的非绝热性质可能有助于观察到的压力滞后。 (c)2008年美国物理研究所。

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