Design and Analysis of Chiral MZI Based All-Optical Galois Field Adder

Authors

DOI:

https://doi.org/10.56042/ijpap.v64i2.25358

Keywords:

All-optical logic gates, Galois field, Chiral mach-zehnder interferometer (CMZI), Adder, Optical arithmetic operation

Abstract

The design of a Chiral Mach-Zehnder interferometer based 4-bit all-optical Galois field adder operating at significantly low power. Quartz has been utilized as the chiral material which rotates the plane of polarization of a light signal and this polarization rotation is the backbone of the all-optical switching module. The presence or absence of the control signal significantly changes the output of the CMZI switch. This switching module solely gives the all-optical logic XOR operation and with the help of four such parallel XOR gates we can design a CMZI based 4-bit all-optical Galois field adder. The circuit has been analysed by calculating performance indicating parameters such as amplitude modulation (AM~0.008695 dB), extinction ratio (ER~13.27 dB), contrast ratio (CR~16.28 dB), Q-factor (Q~34.48 dB), relative eye opening (REO~ 95.29 %) etc to establish the practical feasibility of the device. These satisfactory values suggest that this device may play a significant role in advancing the next generation optical technologies.

Author Biographies

  • Arindam Changder, Department of Physics, Raniganj Girls’ College, Raniganj 713 347, India

    Department of Physics, Kazi Nazrul University, Asansol 713 340, India

  • Kousik Mukherjee, Department of Physics, Banwarilal Bhalotia College, Asansol 713 307, India

    Center of Organic Spintronics and Optoelectronic Devices, Kazi Nazrul University, Asansol 713 340, India

  • Jitendra Nath Roy, Center of Organic Spintronics and Optoelectronic Devices, Kazi Nazrul University, Asansol 713 340, India

    Department of Physics, Kazi Nazrul University, Asansol 713 340, India

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Published

2026-02-03

How to Cite

Design and Analysis of Chiral MZI Based All-Optical Galois Field Adder. (2026). Indian Journal of Pure & Applied Physics (IJPAP), 64(2). https://doi.org/10.56042/ijpap.v64i2.25358

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