Department of Electrical and Computer Engineering, Rutgers University, Piscataway, New Jersey 08854, USA.
Center for Functional Nanomaterials, Brookhaven National Laboratory, Upton, New York 11973, USA.
Nat Commun. 2015 May 11;6:7027. doi: 10.1038/ncomms8027.
Silicon photonics holds great promise for low-cost large-scale photonic integration. In its future development, integration density will play an ever-increasing role in a way similar to that witnessed in integrated circuits. Waveguides are perhaps the most ubiquitous component in silicon photonics. As such, the density of waveguide elements is expected to have a crucial influence on the integration density of a silicon photonic chip. A solution to high-density waveguide integration with minimal impact on other performance metrics such as crosstalk remains a vital issue in many applications. Here, we propose a waveguide superlattice and demonstrate advanced superlattice design concepts such as interlacing-recombination that enable high-density waveguide integration at a half-wavelength pitch with low crosstalk. Such waveguide superlattices can potentially lead to significant reduction in on-chip estate for waveguide elements and salient enhancement of performance for important applications, opening up possibilities for half-wavelength-pitch optical-phased arrays and ultra-dense space-division multiplexing.
硅光子学在低成本大规模光子集成方面具有巨大的潜力。在其未来的发展中,集成密度将以类似于集成电路的方式发挥越来越重要的作用。波导可能是硅光子学中最普遍的元件。因此,波导元件的密度预计将对硅光子芯片的集成密度产生至关重要的影响。在不影响串扰等其他性能指标的情况下实现高密度波导集成仍然是许多应用中的一个重要问题。在这里,我们提出了一种波导超晶格,并展示了先进的超晶格设计概念,如交错-重组,这些概念可实现半波长间距的高密度波导集成,同时具有低串扰。这种波导超晶格可以显著减少波导元件在芯片上的占用空间,并显著提高重要应用的性能,为半波长间距光相控阵和超密集空分复用开辟了可能性。