论文标题
微孔子中反向传播光态的光学记忆和切换动力学
Optical memories and switching dynamics of counterpropagating light states in microresonators
论文作者
论文摘要
KERR非线性可以成为许多数字光子电路的关键推动器,因为它允许访问全光记忆和开关所需的可靠状态。一种常见的技术是使用Kerr Shift来控制谐振器的谐振频率,并将其用作双态,可调节的滤波器。但是,此方法仅在狭窄的功率和频率范围内起作用,或者需要使用辅助激光器。另一种方法是使用由自相互调制和跨相调制之间的相互作用引起的对称光状态之间的不对称双重性,这使光只能以一个方向进入环形谐振器。逻辑高和低状态可以表示并存储为光的循环方向,并通过调节输入功率来控制。在这里,我们研究了此类设备的开关速度,工作激光频率和功率范围以及对比度。我们在原理验证频率范围内达到了2 Mbps的比特率,在1 GHz的光频范围内,操作功率范围涵盖了一个以上的数量级。我们还计算出,集成的光子电路可以表现出GBPS级的比特率,为实现强大而简单的全光纪念,开关,路由器和逻辑门的实现铺平了道路,这些记忆,路由器和逻辑门可以以单个激光频率运行而没有其他电力。
The Kerr nonlinearity can be a key enabler for many digital photonic circuits as it allows access to bistable states needed for all-optical memories and switches. A common technique is to use the Kerr shift to control the resonance frequency of a resonator and use it as a bistable, optically-tunable filter. However, this approach works only in a narrow power and frequency range or requires the use of an auxiliary laser. An alternative approach is to use the asymmetric bistability between counterpropagating light states resulting from the interplay between self- and cross-phase modulation, which allows light to enter a ring resonator in just one direction. Logical HIGH and LOW states can be represented and stored as the direction of circulation of light, and controlled by modulating the input power. Here we study the switching speed, operating laser frequency and power range, and contrast ratio of such a device. We reach a bitrate of 2 Mbps in our proof-of-principle device over an optical frequency range of 1 GHz and an operating power range covering more than one order of magnitude. We also calculate that integrated photonic circuits could exhibit bitrates of the order of Gbps, paving the way for the realization of robust and simple all-optical memories, switches, routers and logic gates that can operate at a single laser frequency with no additional electrical power.