论文标题

氧化锌的介电常数调制非常大,用于动态纳米光子学

Extraordinarily Large Permittivity Modulation in Zinc Oxide for Dynamic Nanophotonics

论文作者

Saha, Soham, Dutta, Aveek, DeVault, Clayton, Diroll, Benjamin T., Schaller, Richard D., Kudyshev, Zhaxylyk, Xu, Xiaohui, Kildishev, Alexander, Shalaev, Vladimir M., Boltasseva, Alexandra

论文摘要

材料的介电介电常数将光 - 物质相互作用的基本物理封装在材料对光激发的局部响应中。动态的,光诱导的介电常数调节可以使光,幅度和光的偏振能够实现前所未有的控制水平。因此,具有基本可调的光学特性和快速响应时间的技术相关材料的详细动态表征是实现可调光学设备的关键步骤。这项工作报告了由光学生成的自由载体引起的锌氧化薄膜锌薄膜的极大介电常数变化(在1600 nm波长下的介电介电常数的相对变化)。我们展示了在电信波长的金属支持的氧化镜中,宽带反射率调制高达70%,并具有皮秒尺度的放松时间。通过控制泵的通量,可以将薄膜零点接近零点的epsilon从8.5微米转移到1.6微米。最后,我们证明调制可以在使用金属支持的ZnO磁盘的情况下在特定的波长下选择性增强,同时维持皮秒级切换时间。这项工作为氧化锌锌的自由载体辅助介电常数调制提供了见解,并可以实现新型的动态设备,用于发光,极化器和空间光调节器。

The dielectric permittivity of a material encapsulates the essential physics of light-matter interaction into the material's local response to optical excitation. Dynamic, photo-induced modulation of the permittivity can enable an unprecedented level of control over the phase, amplitude, and polarization of light. Therefore, the detailed dynamic characterization of technology-relevant materials with substantially tunable optical properties and fast response times is a crucial step in the realization of tunable optical devices. This work reports on the extraordinarily large permittivity changes in zinc oxide thin films (up to -3.6 relative change in the real part of the dielectric permittivity at 1600 nm wavelength) induced by optically generated free carriers. We demonstrate broadband reflectance modulation up to 70 percent in metal-backed oxide mirrors at the telecommunication wavelengths, with picosecond-scale relaxation times. The epsilon near zero points of the films can be dynamically shifted from 8.5 microns to 1.6 microns by controlling the pump fluence. Finally, we show that the modulation can be selectively enhanced at specific wavelengths employing metal-backed ZnO disks while maintaining picosecond-scale switching times. This work provides insights into the free-carrier assisted permittivity modulation in zinc oxide and could enable the realization of novel dynamic devices for beam-steering, polarizers, and spatial light modulators.

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