Seo Min-Kyo, Kang Ju-Hyung, Kim Myung-Ki, Ahn Byeong-Hyeon, Kim Ju-Young, Jeong Kwang-Yong, Park Hong-Gyu, Lee Yong-Hee
Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 305-701, Korea.
Opt Express. 2009 Apr 13;17(8):6790-8. doi: 10.1364/oe.17.006790.
A wavelength-scale cavity is generated by printing a carbonaceous nano-block on a photonic-crystal waveguide. The nanometer-size carbonaceous block is grown at a pre-determined region by the electron-beam-induced deposition method. The wavelength-scale photonic-crystal cavity operates as a single mode laser, near 1550 nm with threshold of approximately 100 microW at room temperature. Finite-difference time-domain computations show that a high-quality-factor cavity mode is defined around the nano-block with resonant wavelength slightly longer than the dispersion-edge of the photonic-crystal waveguide. Measured near-field images exhibit photon distribution well-localized in the proximity of the printed nano-block. Linearly-polarized emission along the vertical direction is also observed.
通过在光子晶体波导上打印碳质纳米块来生成波长尺度的腔。通过电子束诱导沉积法在预定区域生长纳米尺寸的碳质块。该波长尺度的光子晶体腔作为单模激光器工作,在室温下接近1550纳米,阈值约为100微瓦。时域有限差分计算表明,在纳米块周围定义了一个高品质因子的腔模,其共振波长略长于光子晶体波导的色散边缘。测量的近场图像显示光子分布很好地局限在打印的纳米块附近。还观察到沿垂直方向的线偏振发射。