Robust and stable delay interferometers with application to $d$-dimensional time-frequency quantum key distribution
Nurul T. Islam, Andres Aragoneses, A. Lezama, Jungsang Kim, and Daniel, J. Gauthier

TL;DR
This paper demonstrates that commercially available, temperature-compensated unequal-path interferometers can reliably measure high-dimensional quantum states with high visibility and stability, suitable for practical quantum key distribution.
Contribution
The study experimentally verifies the stability and temperature tolerance of specific interferometers for high-dimensional quantum state measurement in quantum communication.
Findings
Interferometers maintain >98.5% visibility over extended periods.
Path-length drift less than 3 nm over one hour with minimal temperature fluctuation.
Path-length shifts of 26 nm/°C and nonlinear behavior observed over temperature range.
Abstract
We investigate experimentally a cascade of temperature-compensated unequal-path interferometers that can be used to measure frequency states in a high-dimensional quantum distribution system. In particular, we demonstrate that commercially-available interferometers have sufficient environmental isolation so that they maintain an interference visibility greater than 98.5\% at a wavelength of 1550 nm over extended periods with only moderate passive control of the interferometer temperature (C). Specifically, we characterize two interferometers that have matched delays: one with a free-spectral range of 2.5 GHz, and the other with 1.25 GHz. We find that the relative path of these interferometers drifts less than 3~nm over a period of one hour during which the temperature fluctuates by 0.10 C. When we purposely heat the interferometers over a temperature…
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