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超光子器件中基于泵浦颜色选择控制的超快全光开关动力学

Pump-Color Selective Control of Ultrafast All-Optical Switching Dynamics in Metaphotonic Devices.

作者信息

Hu Yuze, You Jie, Tong Mingyu, Zheng Xin, Xu Zhongjie, Cheng Xiangai, Jiang Tian

机构信息

College of Advanced Interdisciplinary Studies National University of Defense Technology Changsha 410073 P. R. China.

National Innovation Institute of Defense Technology Beijing 100010 P. R. China.

出版信息

Adv Sci (Weinh). 2020 Jun 5;7(14):2000799. doi: 10.1002/advs.202000799. eCollection 2020 Jul.

Abstract

Incorporating active materials into metamaterials is expected to yield exciting advancements in the unprecedented versatility of dynamically controlling optical properties, which sheds new light on the future optoelectronics. The exploration of emerging semiconductors into terahertz (THz) meta-atoms potentially allows achieving ultrafast nanodevices driven by various applications, such as biomedical sensing/imaging, ultrawide-band communications and security scanners. However, ultrafast optical switching of THz radiation is currently limited to a single level of tuning speed, which is a main hurdle to achieve multifunctionalities. Here, a hybrid metadevice which can realize the pump-wavelength controlled ultrafast switching response by the functionalization of double photoactive layers is demonstrated experimentally. A whole cycle of electromagnetically induced transparency switching with a half-recovery state changes from 0.78 ns to 8.8 ps as pump wavelength varies from near infrared to near ultraviolet regions. The observed pump-color selective switching speed changing from nanosecond scale to picosecond scale is ascribed to the wavelength-dependent penetration length of Ge and the contrasting defect states between noncrystalline Ge and epitaxial Si layers. It is believed that the schemes regarding pump-color controllable ultrafast switching behavior introduced here can inspire more innovations across the field of ultrafast photonics and can boost the reconfigurable metamaterial applications.

摘要

将活性材料融入超材料有望在动态控制光学特性的前所未有的多功能性方面取得令人兴奋的进展,这为未来的光电子学带来了新的曙光。将新兴半导体探索用于太赫兹(THz)超原子有可能实现由各种应用驱动的超快纳米器件,如生物医学传感/成像、超宽带通信和安全扫描仪。然而,太赫兹辐射的超快光学开关目前仅限于单一的调谐速度水平,这是实现多功能性的主要障碍。在此,通过实验展示了一种混合超器件,它可以通过双光活性层的功能化实现泵浦波长控制的超快开关响应。随着泵浦波长从近红外区域变化到近紫外区域,电磁诱导透明开关的整个周期以及半恢复状态从0.78纳秒变为8.8皮秒。观察到的泵浦颜色选择性开关速度从纳秒尺度变化到皮秒尺度归因于锗的波长依赖性穿透长度以及非晶锗和外延硅层之间对比鲜明的缺陷态。相信这里介绍的关于泵浦颜色可控超快开关行为的方案能够激发超快光子学领域的更多创新,并能推动可重构超材料的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d6f/7375251/b0ccf031e46f/ADVS-7-2000799-g001.jpg

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