Anhui Key Laboratory of Condensed Matter Physics at Extreme Conditions, High Magnetic Field Laboratory, HFIPS, Anhui, Chinese Academy of Sciences, Hefei, 230031, P. R. China.
University of Science and Technology of China, Hefei, 230026, P. R. China.
Adv Sci (Weinh). 2023 Mar;10(7):e2205707. doi: 10.1002/advs.202205707. Epub 2023 Jan 16.
Birefringence, which modulates the polarization of electromagnetic wave, has been commercially developed and widely used in modern photonics. Fostered by high-frequency signal processing and communications, feasible birefringence technologies operating in gigahertz (GHz) range are highly desired. Here, a coherent phonon-induced GHz optical birefringence and its manipulation in SrTiO (STO) crystals are demonsrated. With ultrafast laser pumping, the coherent acoustic phonons with low damping are created in the transducer/STO structures. A series of transducer layers are examined and the optimized one with relatively high photon-phonon conversion efficiency, i.e., semiconducting LaRhO film, is obtained. The most intriguing finding here is that, by virtue of high sensitivity to strain perturbation of STO, GHz optical birefringence can be induced by the coherent acoustic phonons and the birefringent amplitudes possess crystal orientation dependence. Optical manipulation of both coherent phonons and its induced GHz birefringence by double pump technique are also realized. These findings reveal an alternative mechanism of ultrafast optical birefringence control, and offer prospects for applications in high-frequency acoustic-optics devices.
双折射会调制电磁波的偏振,目前已经实现商业化并被广泛应用于现代光子学领域。在高频信号处理和通信的推动下,人们迫切需要能够在千兆赫兹 (GHz) 范围内工作的可行双折射技术。在这里,我们展示了在 SrTiO(STO)晶体中相干声子诱导的 GHz 光学双折射及其操控。通过超快激光激发,在换能器/STO 结构中产生了具有低阻尼的相干声子。我们研究了一系列换能器层,并获得了具有较高光子-声子转换效率的优化层,即半导体 LaRhO 薄膜。这里最有趣的发现是,由于 STO 对应变扰动的高灵敏度,相干声子可以诱导 GHz 光学双折射,并且双折射幅度具有晶体取向依赖性。通过双泵技术还实现了对相干声子及其诱导的 GHz 双折射的光学操控。这些发现揭示了超快光学双折射控制的另一种机制,并为高频声-光器件的应用提供了前景。