Caballero Luis Pedraza, Povinelli Michelle L, Ramirez Jhonattan C, Guimarães Paulo S S, Vilela Neto Omar P
Opt Express. 2022 Jan 17;30(2):1976-1993. doi: 10.1364/OE.444714.
This paper presents and demonstrates the three logic processing levels based on complementary photonic crystal logic devices through photonic integrated circuit modeling. We accomplished a set of logic circuits including AND, OR, NAND, NOR, XOR, FAN-OUT, HALF ADDER, and FULL ADDER based on photonic crystal slab platforms. Furthermore, we achieved efficient all-optical logic circuits with contrast ratios as high as 5.5 dB, demonstrated in our simulation results, guaranteeing well-defined output power values for logic representations; a clock-rate up to 2 GHz; and an operating wavelength at λ ≈ 1550 nm. Thus, we can now switch up for high computing abstraction levels to build photonic integrated circuits rather than isolated gates or devices.
本文通过光子集成电路建模,展示并论证了基于互补光子晶体逻辑器件的三个逻辑处理层次。我们基于光子晶体平板平台完成了一组逻辑电路,包括与门、或门、与非门、或非门、异或门、扇出电路、半加器和全加器。此外,我们实现了高效的全光逻辑电路,仿真结果表明其对比度高达5.5 dB,确保了逻辑表示的输出功率值明确;时钟速率高达2 GHz;工作波长为λ≈1550 nm。因此,我们现在可以转向更高的计算抽象层次,以构建光子集成电路,而不是孤立的门电路或器件。