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Simon Gross

Researcher at Macquarie University

Publications -  208
Citations -  3526

Simon Gross is an academic researcher from Macquarie University. The author has contributed to research in topics: Laser & Interferometry. The author has an hindex of 31, co-authored 190 publications receiving 2950 citations. Previous affiliations of Simon Gross include National Institutes of Natural Sciences, Japan & Centre for Ultrahigh Bandwidth Devices for Optical Systems.

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Journal ArticleDOI

A micro-optical module for multi-wavelength addressing of trapped ions

TL;DR: In this paper, a micro-optical assembly that irradiates two spatially separate points, each with a set of three blue (422 nm) and two infrared (1033 nm and 1092 nm) laser beams is presented.
Proceedings ArticleDOI

Experimental demonstration of 7 Tb/s switching using novel silicon photonic integrated circuit

TL;DR: In this paper, a silicon photonic integrated circuit composed of a 7×7 fiber switch and low loss SDM couplers was proposed for a 1 Tb/s/core transmission over 7-core fiber and SDM switching.
Proceedings ArticleDOI

First stellar photons through an integrated photonic pupil remapping interferometer

TL;DR: In this paper, the results from the first successful on-telescope tests of an integrated photonic pupil remapping interferometer were reported, along with a detailed discussion of the advantages of integrated photonics for developing high dynamic range stellar interferometers.
Proceedings ArticleDOI

Dynamic Crosstalk Study in a Few-Mode-Multi-Core Fiber

TL;DR: This work investigates crosstalk fluctuations between cores and modes in a few-mode-MCF, observing almost 20dB power fluctuations for CW signals and measures increased crosStalk penalty for LP11 modes compared to the more confined LP01 modes.
Journal ArticleDOI

Achromatic photonic tricouplers for application in nulling interferometry

TL;DR: In this paper, the use of a tricoupler designed by ultrafast laser inscription is explored to solve the phase fluctuations in the incoming light causing instability in the interference and chromaticity of the directional couplers that prevent a deep broadband interferometric null.