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Dynamical patterns of phase transformations from self-trapping of quantum excitons

机译:量子激子自陷引起的相变动力学模式

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摘要

Phase transitions induced by short optical pulses is a new mainstream in studies of cooperative electronic states. Its special realization in systems with neutral-ionic transformations stands out in a way that the optical pumping goes to excitons rather than to electronic bands. We present a semi-phenomenological modeling of spacio-temporal effects applicable to any system where the optical excitons are coupled to a symmetry breaking order parameter. In our scenario, after a short initial pulse of photons, a quasi-condensate of excitons appears as a macroscopic quantum state which then evolves interacting with other degrees of freedom prone to instability. This coupling leads to self-trapping of excitons; that locally enhances their density which can surpass a critical value to trigger the phase transformation, even if the mean density is below the required threshold. The system is stratified in domains which evolve through dynamical phase transitions and may persist even after the initiating excitons have recombined. We recover dynamic interplays of fields such as the excitons wave function, electronic charge transfer and polarization, lattice dimerization. (C) 2014 Elsevier B.V. All rights reserved.
机译:由短光脉冲引起的相变是合作电子状态研究的新主流。它在具有中性离子转换的系统中的特殊实现使光泵浦激子进入了电子激子,而不是电子波段。我们提出了时空效应的半现象学模型,适用于光学激子耦合到对称破坏阶次参数的任何系统。在我们的情况下,在短暂的光子初始脉冲之后,激子的准凝聚出现为宏观量子态,然后演化为与其他易于不稳定的自由度相互作用。这种耦合导致激子自陷。即使平均密度低于要求的阈值,也可以局部提高其密度,该密度可以超过临界值以触发相变。该系统在通过动态相变演化的域中分层,并且即使在初始激子重新组合后也可能持续存在。我们恢复了激子波函数,电荷转移和极化,晶格二聚化等领域的动态相互作用。 (C)2014 Elsevier B.V.保留所有权利。

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