Gorobtsov O Yu, Ponet L, Patel S K K, Hua N, Shabalin A G, Hrkac S, Wingert J, Cela D, Glownia J M, Zhu D, Medapalli R, Chollet M, Fullerton E E, Artyukhin S, Shpyrko O G, Singer A
Materials Science and Engineering Department, Cornell University, Ithaca, NY, USA.
Central Research Labs, Italian Institute of Technology, Genova, Italy.
Nat Commun. 2021 May 17;12(1):2865. doi: 10.1038/s41467-021-23059-2.
The spin-phonon interaction in spin density wave (SDW) systems often determines the free energy landscape that drives the evolution of the system. When a passing energy flux, such as photoexcitation, drives a crystalline system far from equilibrium, the resulting lattice displacement generates transient vibrational states. Manipulating intermediate vibrational states in the vicinity of the critical point, where the SDW order parameter changes dramatically, would then allow dynamical control over functional properties. Here we combine double photoexcitation with an X-ray free-electron laser (XFEL) probe to control and detect the lifetime and magnitude of the intermediate vibrational state near the critical point of the SDW in chromium. We apply Landau theory to identify the mechanism of control as a repeated partial quench and sub picosecond recovery of the SDW. Our results showcase the capabilities to influence and monitor quantum states by combining multiple optical photoexcitations with an XFEL probe. They open new avenues for manipulating and researching the behaviour of photoexcited states in charge and spin order systems near the critical point.
自旋密度波(SDW)系统中的自旋 - 声子相互作用通常决定了驱动系统演化的自由能态势。当诸如光激发之类的通过能量通量驱使晶体系统远离平衡态时,所产生的晶格位移会产生瞬态振动状态。在SDW序参量急剧变化的临界点附近操纵中间振动状态,将能够对功能特性进行动态控制。在此,我们将双光激发与X射线自由电子激光(XFEL)探测相结合,以控制和检测铬中SDW临界点附近中间振动状态的寿命和幅度。我们应用朗道理论来确定控制机制为SDW的重复部分猝灭和亚皮秒恢复。我们的结果展示了通过将多种光学光激发与XFEL探测相结合来影响和监测量子态的能力。它们为在临界点附近的电荷和自旋有序系统中操纵和研究光激发态的行为开辟了新途径。