National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing 210093, China.
Nat Nanotechnol. 2011 Feb;6(2):103-6. doi: 10.1038/nnano.2010.264. Epub 2011 Jan 16.
The discovery of efficient sources of terahertz radiation has been exploited in imaging applications, and developing a nanoscale terahertz source could lead to additional applications. High-frequency mechanical vibrations of charged nanostructures can lead to radiative emission, and vibrations at frequencies of hundreds of kilohertz have been observed from a ZnO nanobelt under the influence of an alternating electric field. Here, we observe mechanical resonance and radiative emission at ∼ 0.36 THz from core-shell ZnO mesocrystal microspheres excited by a continuous green-wavelength laser. We find that ∼ 0.016% of the incident power is converted into terahertz radiation, which corresponds to a quantum efficiency of ∼ 33%, making the ZnO microspheres competitive with existing terahertz-emitting materials. The mechanical resonance and radiation stem from the coherent photo-induced vibration of the hexagonal ZnO nanoplates that make up the microsphere shells. The ZnO microspheres are formed by means of a nonclassical, self-organized crystallization process, and represent a straightforward route to terahertz radiation at the nanoscale.
高效太赫兹辐射源的发现已被应用于成像领域,而开发纳米级太赫兹源则可能带来更多应用。在交变电场的作用下,带电荷的纳米结构的高频机械振动会导致辐射发射,人们已经观察到 ZnO 纳米带在数百千赫兹的频率下发生振动。在此,我们观察到在连续绿光激光激发下,核壳 ZnO 介晶微球在约 0.36THz 处的机械共振和辐射发射。我们发现约 0.016%的入射功率转换为太赫兹辐射,这对应于约 33%的量子效率,使 ZnO 微球与现有的太赫兹发射材料具有竞争力。机械共振和辐射源于组成微球壳的六方 ZnO 纳米板的相干光致振动。通过一种非经典的自组织结晶过程形成 ZnO 微球,代表了在纳米尺度上产生太赫兹辐射的一种直接途径。