Ho Ya-Lun, Clark J Kenji, Kamal A Syazwan A, Delaunay Jean-Jacques
School of Engineering , The University of Tokyo , 7-3-1, Hongo , Bunkyo-ku, Tokyo 113-8656 , Japan.
Nano Lett. 2018 Dec 12;18(12):7769-7776. doi: 10.1021/acs.nanolett.8b03531. Epub 2018 Nov 16.
Plasmonic-waveguide lasers, which exhibit subdiffraction limit lasing and light propagation, are promising for the next-generation of nanophotonic devices in computation, communication, and biosensing. Plasmonic lasers supporting waveguide modes are often based on nanowires grown with bottom-up techniques that need to be transferred and aligned for use in optical circuits. Here, we demonstrate a monolithically fabricated ZnO/Al plasmonic-waveguide nanolaser compatible with the fabrication requirements of on-chip circuits. The nanolaser is designed with a plasmonic metal layer on the top of the laser cavity only, providing highly efficient energy transfer between photons, excitons, and plasmons, and achieving lasing in the ultraviolet region up to 330 K with a low threshold intensity (0.20 mJ/cm at room temperature). This work demonstrates the realization of a plasmonic-waveguide nanolaser without the need for transfer and positioning steps, which is the key for on-chip integration of nanophotonic devices.
表面等离子体激元波导激光器能够实现亚衍射极限的激光发射和光传播,在下一代用于计算、通信和生物传感的纳米光子器件方面具有广阔前景。支持波导模式的表面等离子体激元激光器通常基于采用自下而上技术生长的纳米线,这些纳米线需要进行转移和对准才能用于光学电路。在此,我们展示了一种与片上电路制造要求兼容的单片制造的ZnO/Al表面等离子体激元波导纳米激光器。该纳米激光器仅在激光腔顶部设计了一层表面等离子体激元金属层,可实现光子、激子和表面等离子体激元之间的高效能量转移,并在高达330 K的温度下在紫外区域实现低阈值强度(室温下为0.20 mJ/cm²)的激光发射。这项工作展示了无需转移和定位步骤即可实现表面等离子体激元波导纳米激光器,这是纳米光子器件片上集成的关键。