全光激光机相干可调谐放大器的演示

T. Vaerenbergh, G. Mendoza, D. Kielpinski, J. Pelc, N. Tezak, R. Bose, C. Santori, R. Beausoleil
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引用次数: 1

摘要

相干伊辛机是一种光学加速器,它通过在网络的连接矩阵中编码问题来解决不同的优化任务。到目前为止,实验实现仅限于时间复用解决方案,其中一个非线性节点存在于反馈回路中。在惠普实验室中,我们研究了一种空间复用解决方案的实现,该解决方案具有一组名义上相同的非线性节点。由于这避免了长时间的延迟,这使得系统更适合集成,从而更适合批量生产。在本文中,我们展示了一种相位敏感放大器,这是集成电路中用于这种类型的全光计算的关键组件,因为它可以克服电路无源连接矩阵中的电路损耗和反馈环路中的波导损耗。放大器是在非晶绝缘体上的硅制成的,依赖于热光学自加热的环形加载马赫-曾德尔干涉仪,尽管这个概念可以转移到其他类型的非线性。有效增益可通过控制偏置输入的功率和相位来调节。虽然我们在全光集成相干Ising机的背景下提出了该放大器,但该放大器可用于需要相干放大的其他应用,而无需在制造流程中添加增益材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Demonstration of a Coherent Tunable Amplifier for All-Optical Ising Machines
Coherent Ising machines are a type of optical accelerators that can solve different optimization tasks by encoding the problem in the connection matrix of the network. So far, experimental realizations have been limited to time multiplexed solutions, in which one nonlinear node is present in a feedback loop. In Hewlett Packard Labs, we investigate the implementation of a spatially multiplexed solution, with an array of nominally identical nonlinear nodes. As this avoids the need for a long delayline, this makes the system more suitable for integration and hence mass production. In this paper, we demonstrate a phasesensitive amplifier, a critical component in integrated circuits for this type of all-optical computing, as it allows to overcome circuit losses in the passive connection matrix of the circuit and waveguide losses in the feedback loop. The amplifier is fabricated in amorphous silicon-on- insulator and relies on thermo-optic selfheating in a ring-loaded Mach-Zehnder interferometer, although the concept is transferable to other types of nonlinearities. The effective gain is tunable by controlling the power and phase of the bias input. While we propose this amplifier in the context of all-optical integrated coherent Ising machines, this amplifier can be used in other applications where coherent amplification is required without the need to add a gain material in the fabrication flow.
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