English

Space Qualifying Silicon Photonic Modulators and Circuits

Optics 2023-11-28 v1 Instrumentation and Methods for Astrophysics Applied Physics

Abstract

Reducing the form factor while retaining the radiation hardness and performance matrix is the goal of avionics. While a compromise between a transistor s size and its radiation hardness has reached consensus in micro-electronics, the size-performance balance for their optical counterparts has not been quested but eventually will limit the spaceborne photonic instruments capacity to weight ratio. Here we performed the first space experiments of photonic integrated circuits (PICs), revealing the critical roles of energetic charged particles. The year long cosmic radiation does not change carrier mobility but reduces free carrier lifetime, resulting in unchanged electro-optic modulation efficiency and well expanded optoelectronic bandwidth. The diversity and statistics of the tested PIC modulator indicate the minimal requirement of shielding for PIC transmitters with small footprint modulators and complexed routing waveguides, towards lightweight space terminals for terabits communications and inter-satellite ranging.

Keywords

Cite

@article{arxiv.2311.15870,
  title  = {Space Qualifying Silicon Photonic Modulators and Circuits},
  author = {Dun Mao and Lorry Chang and Hwaseob Lee and Anthony W. Yu and Bennett A. Maruca and Kaleem Ullah and William H. Matthaeus and Michael A. Krainak and Po Dong and Tingyi Gu},
  journal= {arXiv preprint arXiv:2311.15870},
  year   = {2023}
}

Comments

Accepted by Science Advances

R2 v1 2026-06-28T13:32:44.851Z