Department of Chemistry , University of California , Berkeley , California 94720 , United States.
Materials Sciences Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.
Chem Rev. 2019 Aug 14;119(15):9153-9169. doi: 10.1021/acs.chemrev.9b00240. Epub 2019 Jul 8.
All-photonic integrated circuits are promising platforms for future systems beyond the limitation of Moore's law. Over the last several decades, one-dimensional (1D) nanowires have demonstrated great potential in photonic circuitry because of their unique 1D structure to effectively generate and tightly confine optical signals as well as easily tunable optical properties. In this Review, we categorize nanowires based on the optical properties (i.e., semiconducting, metallic, and dielectric nanowires) for their potential photonic applications (as light emitters or plasmonic and photonic waveguides). We further discuss the recent efforts in integration of nanowire-based photonic elements toward next-generation optical information processors. However, there are still several challenges remaining before the nanowires are fully utilized as photonic building blocks. The scientific and technical challenges and outlooks are provided to indicate the future directions.
全光集成电路是超越摩尔定律限制的未来系统的有前途的平台。在过去的几十年中,一维(1D)纳米线由于其独特的 1D 结构,在光子电路中表现出巨大的潜力,因为它可以有效地产生和紧密限制光信号,并且光学性质易于调节。在这篇综述中,我们根据光学性质(即半导体、金属和介电纳米线)对纳米线进行分类,以探讨其在潜在光子应用(作为发光体或等离子体和光子波导)中的应用。我们进一步讨论了将基于纳米线的光子元件集成到下一代光信息处理器方面的最新进展。然而,在纳米线完全用作光子构建块之前,仍存在一些挑战。提供了科学和技术挑战及展望,以指明未来的方向。