Gurung Sudip, Bej Subhajit, Dang Quynh, Sahoo Ambaresh, Anopchenko Aleksei, Yi Zhenhuan, Sokolov Alexei V, Marini Andrea, Lee Ho Wai Howard
Department of Physics and Astronomy, University of California, Irvine, CA 92697, USA.
The Institute for Quantum Science and Engineering, Texas AM University, College Station, TX 77843, USA.
Sci Adv. 2025 May 23;11(21):eadu8850. doi: 10.1126/sciadv.adu8850. Epub 2025 May 21.
The dynamics of nonlinear optical processes in epsilon-near-zero (ENZ) transparent conductive oxides (TCOs) are primarily governed by hot electron relaxation with a sub-picosecond response. However, there is currently a lack of comprehensive understanding of the ultrafast electron dynamics in nonlinear TCO ENZ materials. This study investigates the effects of laser peak power and ENZ mode excitation on hot electron relaxation in TCOs. Our experimental analysis theoretically supported by a hydrodynamic model reveals that increasing laser pulse intensity extends hot electron relaxation time by more than 200%, while ENZ mode excitation increases it by more than 40% in representative TCO ENZ materials. This research demonstrates the controllable modulation of ultrafast ENZ nonlinearity via pulse peak power and ENZ mode field enhancement. These findings provide substantial insights into the potential utilization of ENZ nonlinearity for the development of optical and quantum computing components, including ultrafast optical switches, dynamic pulse shapers, and modulators.
在近零介电常数(ENZ)透明导电氧化物(TCO)中,非线性光学过程的动力学主要由具有亚皮秒响应的热电子弛豫所主导。然而,目前对于非线性TCO ENZ材料中的超快电子动力学缺乏全面的理解。本研究调查了激光峰值功率和ENZ模式激发对TCO中热电子弛豫的影响。我们的实验分析得到了流体动力学模型的理论支持,结果表明,在代表性的TCO ENZ材料中,增加激光脉冲强度可使热电子弛豫时间延长超过200%,而ENZ模式激发可使其增加超过40%。本研究证明了通过脉冲峰值功率和ENZ模式场增强对超快ENZ非线性进行可控调制。这些发现为ENZ非线性在光学和量子计算组件(包括超快光开关、动态脉冲整形器和调制器)开发中的潜在应用提供了重要见解。