NSF Nanoscale Science and Engineering Center, 3112 Etcheverry Hall, University of California, Berkeley, California 94720, USA.
Nano Lett. 2012 Oct 10;12(10):5396-402. doi: 10.1021/nl302809a. Epub 2012 Sep 21.
With unprecedented ability to localize electromagnetic field in time and space, the nanometer scale laser promises exceptionally broad scientific and technological innovation. However, as the laser cavity becomes subwavelength, the diffraction of light prohibits the directional emission, so-called the directionality, one of the fundamental attributes of the laser. Here, we have demonstrated a deep subwavelength waveguide embedded (WEB) plasmon laser that directs more than 70% of its radiation into an embedded semiconductor nanobelt waveguide with dramatically enhanced radiation efficiency. The unique configuration of WEB plasmon laser naturally integrates photonic and electronic functionality allowing both efficient electrical modulation and wavelength multiplexing. We have demonstrated a plasmonic circuit integrating five independently modulated multicolored plasmon laser sources multiplexed onto a single semiconductor nanobelt waveguide, illustrating the potential of plasmon lasers for large scale, ultradense photonic integration.
凭借在时间和空间上对电磁场进行空前定位的能力,纳米级激光有望带来异常广泛的科技创新。然而,随着激光腔缩小至亚波长尺度,光的衍射会阻碍定向发射,即激光的基本属性之一的方向性。在此,我们展示了一种深埋亚波长波导嵌入式(WEB)等离子体激光,它将超过 70%的辐射引导到嵌入的半导体纳米带波导中,从而显著提高了辐射效率。WEB 等离子体激光的独特结构自然地集成了光子和电子功能,允许高效的电调制和波长复用。我们已经展示了一种等离子体电路,该电路将五个独立调制的多色等离子体激光源集成到单个半导体纳米带波导上,说明了等离子体激光在大规模、超高密度光子集成方面的潜力。