Cavity enhanced second-order nonlinear photonic logic circuits
arXiv:1511.08321 · doi:10.1103/PhysRevApplied.5.054001
Abstract
A large obstacle for realizing quantum photonic logic is the weak optical nonlinearity of available materials, which results in large power consumption. In this paper, we present the theoretical design of all-optical logic with second order () nonlinear bimodal cavities and their networks. Using semiclassical models derived from the Wigner quasi-probability distribution function, we analyze the power consumption and signal-to-noise ratio (SNR) of networks implementing an optical AND gate and an optical latch. Comparison between the second and third order optical logic reveals that while the design outperforms the design in terms of the SNR for the same input power, employing the nonlinearity necessitates the use of cavities with ultra high quality factors () to achieve gate power consumption comparable to that of the design at significantly smaller quality factors (). Using realistic estimates of the and nonlinear susceptibilities of available materials, we show that at achievable quality factors (), the design is an order of magnitude more energy efficient than the corresponding design.
References in corpus (7)
- High Quality factor photonic crystal nanobeam cavities
- Single-photon blockade in doubly resonant nanocavities with second-order nonlinearity
- Second harmonic generation in phase matched aluminum nitride waveguides
- GaAs photonic crystal cavity with ultra-high Q: microwatt nonlinearity at 1.55 m
- Multimode nanobeam cavities for nonlinear optics: high quality resonances separated by an octave
- Optical bistability in a one-dimensional photonic crystal resonator using a reverse-biased pn-junction
- Cavity-Enabled Self-Electro-Optic Bistability in Silicon Photonics