Optical communication beyond orbital angular momentum
Оптическая связь за пределами орбитального углового момента
2016-06-10
SCID: 54.1/bu7wsqcz
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holographic multiplexingmode division multiplexingoptical communicationorbital angular momentumradial and azimuthal degrees of freedom
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Abstract (AI)
Mode division multiplexing (MDM) is mooted as a technology to address future bandwidth issues, and has been successfully demonstrated in free space using spatial modes with orbital angular momentum (OAM). To further increase the data transmission rate, more degrees of freedom are required to form a densely packed mode space. Here we move beyond OAM and demonstrate multiplexing and demultiplexing using both the radial and azimuthal degrees of freedom. We achieve this with a holographic approach that allows over 100 modes to be encoded on a single hologram, across a wide wavelength range, in a wavelength independent manner. Our results offer a new tool that will prove useful in realizing higher bit rates for next generation optical networks.
Key Findings
1
A holographic approach enables multiplexing and demultiplexing of more than 100 optical modes on a single hologram.
2
The holographic method operates across a wide wavelength range in a wavelength-independent manner.
3
The study extends free-space mode division multiplexing beyond orbital angular momentum by exploiting both radial and azimuthal spatial degrees of freedom.
4
Using additional spatial degrees of freedom provides a route toward denser mode spaces and higher data rates in next-generation optical networks.
Research Object
free-space optical mode-division multiplexing using spatial modes with radial and azimuthal degrees of freedom
Research Subject
multiplexing and demultiplexing of more than 100 spatial modes across a wide, wavelength-independent range to increase optical data transmission rates
Publication Details
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2016-06-10
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