Liu Zhihai, Li Xiang, Cheng Siying, Li Yaru, Jin Wei, Zhang Yu, Qin Yifan, Zhang Yaxun, Li Shanshan, Lotnyk Andriy, Yuan Libo
Key Lab of In-Fiber Integrated Optics, Ministry Education of China, Harbin Engineering University, Harbin, 150001, P.R. China.
Leibniz Institute of Surface Engineering, Permoserstr. 15, 04318 Leipzig, Germany.
Nanophotonics. 2023 Jun 12;12(15):3179-3187. doi: 10.1515/nanoph-2023-0212. eCollection 2023 Jul.
The control of information is a defining feature of the information age, and the optical modulator likewise has a crucial role in optical networks. The transmission, processing, and storage of data have demanded low energy consumption and high speed for photonic systems, promoting the development of electro-optic modulators to all-optical modulators. Although these all-optical modulation methods eliminate the photoelectric conversion, the disadvantage of volatile materials requiring continuous power supply when processing and retaining data in new materials-based devices increase energy consumption. We propose a GeSbTe (GST) integrated all-optical, nonvolatile optical modulator for in-fiber operation. The pulse-induced GST phase transition changes the reflectivity of the fiber end face, and this difference affects the result of the interference, achieving a modulation of output light intensity in interference spectra. The experimental results reveal that the device has obtained 13 dB interference intensity contrast in the telecommunications bands, and its response to a pump pulse is around 100 ns. Furthermore, we demonstrated the operation of the device as a scalar multiplication unit and a logic operation unit. The signal can be transmitted, processed, and stored in the fiber without photoelectric conversion. With the benefits of the switching power consumption of less than 100 nJ and the nonvolatile nature of GST, the device will be more energy-efficient in synchronous processing and storing. This in-fiber operating modulator lays the foundation for developing all-optical devices and networks.
信息控制是信息时代的一个决定性特征,光调制器在光网络中同样起着至关重要的作用。数据的传输、处理和存储对光子系统提出了低能耗和高速的要求,推动了电光调制器向全光调制器的发展。尽管这些全光调制方法消除了光电转换,但基于新材料的器件在处理和保留数据时需要连续供电的易挥发材料的缺点增加了能耗。我们提出了一种用于光纤操作的集成锗锑碲(GST)全光、非易失性光调制器。脉冲诱导的GST相变改变了光纤端面的反射率,这种差异影响干涉结果,实现了干涉光谱中输出光强度的调制。实验结果表明,该器件在电信频段获得了13 dB的干涉强度对比度,其对泵浦脉冲的响应约为100 ns。此外,我们展示了该器件作为标量乘法单元和逻辑运算单元的操作。信号可以在光纤中传输、处理和存储,无需光电转换。凭借小于100 nJ的开关功耗和GST的非易失性,该器件在同步处理和存储中将更加节能。这种光纤操作调制器为全光器件和网络的发展奠定了基础。