Abstract

A 4 4 reconfigurable Mach-Zehnder interferometer (MZI)-based linear optical processor is investigated through its theoretical analyses and characterized experimentally. The linear transformation matrix of the structure is theoretically determined using its building block, which is a 2 2 reconfigurable MZI. To program the device, the linear transformation matrix of a given application is decomposed into that of the constituent MZIs of the structure. Thus, the required phase shifts for implementing the transformation matrix of the application by means of the optical processor are determined theoretically. Due to random phase offsets in the MZIs resulting from fabrication process variations, they are initially configured through an experimental protocol. The presented calibration scheme allows to straightforwardly characterize the MZIs to mitigate the possible input phase errors and determine the bar and cross states of each MZI for tuning it at the required sate before programming the device. After the configuration process, the device can be programmed to construct the linear transformation matrix of the application. In this regard, using the required bias voltages, the phase shifts obtained from the decomposition process are applied to the phase shifters of the MZIs in the device.

Highlights

  • T HE interest in reconfigurable multiport linear optical interferometers is growing rapidly, due to their high speed and low power consumption

  • This paper presents the theoretical and experimental analysis of a 4×4 reconfigurable Mach-Zehnder interferometer (MZI)-based optical processor that can be configured for a given application to perform linear functions, such as matrix multiplications in computational systems like optical neural networks [3], [4], quantum transport simulations [5], reconfigurable truetime optical delay lines [1] and singular value decomposition (SVD) in optics [6], [7]

  • A theoretical analysis was developed in detail to extract the required phase shifts from the corresponding linear transformation matrix by decomposing it into that of the MZIs in the SU(4) section of the device

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Summary

INTRODUCTION

T HE interest in reconfigurable multiport linear optical interferometers is growing rapidly, due to their high speed and low power consumption. This paper presents the theoretical and experimental analysis of a 4×4 reconfigurable MZI-based optical processor that can be configured for a given application to perform linear functions, such as matrix multiplications in computational systems like optical neural networks [3], [4], quantum transport simulations [5], reconfigurable truetime optical delay lines [1] and singular value decomposition (SVD) in optics [6], [7] They have been used in different integrated optical structures representing linear transformation between inputs and outputs [2], [8], [9]. We show how to determine the required phase shifts and their corresponding bias voltages to program the optical processor experimentally

THEORY AND ANALYSIS
Programming the Linear Optical Processor
SIMULATION AND EXPERIMENTAL RESULTS
CONCLUSION
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