Zhang Yuan, Dai Junfeng, Zhong Xiangli, Zhang Dongwen, Zhong Gaokuo, Li Jiangyu
Shenzhen Key Laboratory of Nanobiomechanics, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen, Guangdong, 518055, China.
Shenzhen Institute for Quantum Science and Engineering, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, China.
Adv Sci (Weinh). 2021 Nov;8(22):e2102488. doi: 10.1002/advs.202102488. Epub 2021 Oct 10.
Ferroelectric materials have been a key research topic owing to their wide variety of modern electronic and photonic applications. For the quick exploration of higher operating speed, smaller size, and superior efficiencies of novel ferroelectric devices, the ultrafast dynamics of ferroelectrics that directly reflect their respond time and lifetimes have drawn considerable attention. Driven by time-resolved pump-probe spectroscopy that allows for probing, controlling, and modulating dynamic processes of ferroelectrics in real-time, much research efforts have been made to understand and exploit the ultrafast dynamics of ferroelectric. Herein, the current state of ultrafast dynamic features of ferroelectrics tracked by time-resolved pump-probe spectroscopy is reviewed, which includes ferroelectrics order parameters of polarization, lattice, spin, electronic excitation, and their coupling. Several potential perspectives and possible further applications combining ultrafast pump-probe spectroscopy and ferroelectrics are also presented. This review offers a clear guidance of ultrafast dynamics of ferroelectric orders, which may promote the rapid development of next-generation devices.
铁电材料因其在现代电子和光子领域的广泛应用而一直是关键的研究课题。为了快速探索新型铁电器件更高的运行速度、更小的尺寸和更高的效率,直接反映其响应时间和寿命的铁电体超快动力学受到了广泛关注。在时间分辨泵浦 - 探测光谱技术的推动下,该技术能够实时探测、控制和调制铁电体的动态过程,人们为理解和利用铁电体的超快动力学付出了诸多研究努力。在此,综述了通过时间分辨泵浦 - 探测光谱技术追踪的铁电体超快动态特征的当前状态,其中包括极化、晶格、自旋、电子激发等铁电序参量及其耦合。还介绍了超快泵浦 - 探测光谱技术与铁电体相结合的几个潜在前景和可能的进一步应用。本综述为铁电序的超快动力学提供了清晰的指导,这可能会推动下一代器件的快速发展。