Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA.
Laser Science and Technology, SLAC Linear Accelerator Laboratory, Menlo Park, California 94025, USA.
Phys Rev Lett. 2023 Mar 24;130(12):126902. doi: 10.1103/PhysRevLett.130.126902.
Light-induced ferroelectricity in quantum paraelectrics is a new avenue of achieving dynamic stabilization of hidden orders in quantum materials. In this Letter, we explore the possibility of driving a transient ferroelectric phase in the quantum paraelectric KTaO_{3} via intense terahertz excitation of the soft mode. We observe a long-lived relaxation in the terahertz-driven second harmonic generation (SHG) signal that lasts up to 20 ps at 10 K, which may be attributed to light-induced ferroelectricity. Through analyzing the terahertz-induced coherent soft-mode oscillation and finding its hardening with fluence well described by a single-well potential, we demonstrate that intense terahertz pulses up to 500 kV/cm cannot drive a global ferroelectric phase in KTaO_{3}. Instead, we find the unusual long-lived relaxation of the SHG signal comes from a terahertz-driven moderate dipolar correlation between the defect-induced local polar structures. We discuss the impact of our findings on current investigations of the terahertz-induced ferroelectric phase in quantum paraelectrics.
量子顺电体中的光致铁电性是实现量子材料中隐藏序动态稳定的新途径。在这封信件中,我们通过强烈的太赫兹激发软模探索了在量子顺电体 KTaO3 中驱动瞬态铁电相的可能性。我们观察到太赫兹驱动的二次谐波产生 (SHG) 信号的长时间弛豫,在 10 K 下持续长达 20 ps,这可能归因于光致铁电性。通过分析太赫兹诱导的相干软模振荡,并发现其随光强的硬化很好地由单势阱描述,我们证明了高达 500 kV/cm 的强烈太赫兹脉冲不能在 KTaO3 中驱动全局铁电相。相反,我们发现 SHG 信号的异常长时间弛豫来自于太赫兹驱动的缺陷诱导局部极化结构之间的中等偶极相关。我们讨论了我们的发现对当前量子顺电体中太赫兹诱导铁电相研究的影响。