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C. Alex Kaylor

Publications and source records attributed to C. Alex Kaylor.

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Radiation-induced Ionization Effects and Space Mission Requirements for Silicon Photonic Mach-Zehnder Modulators

Photonic integrated circuits have become essential for meeting the growing global demand for high-capacity information processing and transport. Assessing their radiation tolerance is essential for deploying systems in radiation prone environments - including in space, high-energy particle accelerators, and defense radiation testing facilities - where the performance and compactness of photonic integrated circuits are increasingly advantageous. This work investigates the analog and digital radio frequency electro-optic performance of Mach-Zehnder modulators (MZMs) subject to 10-keV X-ray irradiation, which mimics cumulative ionization effects in space flight. Silicon photonic MZMs serve as excellent exemplars since they are interferometric devices comprised of elements common to many integrated photonic circuits. Under standard bias conditions, the irradiated MZMs exhibited significantly reduced bandwidth, a corresponding eye closure and baud rate dependent increases in the estimated error rate. The observed performance degradation is attributed to total ionizing dose effects which leads to hole trapping at the silicon/silicon dioxide waveguide interfaces as well as fast traps with energies near the conduction band edge. Notably, when MZMs were irradiated with all leads grounded, no radiation sensitivity to the electro-optic response was observed highlighting the importance of testing under standard operating conditions for ground-based radiation testing as well as on-orbit studies. Understanding the radiation induced performance degradation of MZMs and other integrated photonic devices is increasingly important for space and accelerator environments as performance requirements and deployment opportunities increase.

physics.app-ph

Seeded Topology Optimization for Commercial Foundry Integrated Photonics

We present a seeded topology optimization methodology for integrated photonic devices fabricated on foundry platforms that yields improved performance compared to traditional topology optimization. We employ blurring filters and a design rule check correction algorithm to more readily meet fabrication constraints, resulting in devices with fewer artifacts and improved correlation between simulation and measurements. A statistical study is performed on a 2D modal multiplexer, revealing that 87% of devices optimized using this strategy conform to foundry constraints, compared to 13% of devices optimized using traditional TO. We apply seeded topology optimization to an ultra-compact TE modal multiplexer, a TE mode converter, a polarization rotator, and a high-contrast grating reflector. Using this optimization strategy, the measured insertion loss of the TE mode converter was reduced from < 1.50 dB to < 0.64 dB, and the measured TE1 insertion loss of the TE modal multiplexer was reduced from < 3.95 dB to < 1.38 dB over C-band. This approach enables a two-step inverse design process, merging of physics-informed design strategies with inverse design, and ensures strict compliance with foundry constraints throughout optimization.

physics.optics