Yamanishi Junsuke, Yamane Hidemasa, Naitoh Yoshitaka, Li Yan Jun, Yokoshi Nobuhiko, Kameyama Tatsuya, Koyama Seiya, Torimoto Tsukasa, Ishihara Hajime, Sugawara Yasuhiro
Department of Applied Physics, Osaka University, Suita, Osaka, Japan.
Institute for Molecular Science, National Institutes of Natural Sciences, Okazaki, Aichi, Japan.
Nat Commun. 2021 Jun 23;12(1):3865. doi: 10.1038/s41467-021-24136-2.
Three-dimensional (3D) information of the optical response in the nanometre scale is important in the field of nanophotonics science. Using photoinduced force microscopy (PiFM), we can visualize the nano-scale optical field using the optical gradient force between the tip and sample. Here, we demonstrate 3D photoinduced force field visualization around a quantum dot in the single-nanometre spatial resolution with heterodyne frequency modulation technique, using which, the effect of the photothermal expansion of the tip and sample in the ultra-high vacuum condition can be avoided. The obtained 3D mapping shows the spatially localized photoinduced interaction potential and force field vectors in the single nano-scale for composite quantum dots with photocatalytic activity. Furthermore, the spatial resolution of PiFM imaging achieved is ~0.7 nm. The single-nanometer scale photoinduced field visualization is crucial for applications such as photo catalysts, optical functional devices, and optical manipulation.
纳米尺度光学响应的三维(3D)信息在纳米光子学科学领域中至关重要。使用光致力显微镜(PiFM),我们可以利用针尖与样品之间的光学梯度力来可视化纳米尺度的光场。在此,我们利用外差频率调制技术,以单纳米空间分辨率展示了量子点周围的三维光致力场可视化,通过该技术可以避免在超高真空条件下针尖和样品的光热膨胀效应。所获得的三维映射显示了具有光催化活性的复合量子点在单纳米尺度上的空间局部光致相互作用势和力场矢量。此外,实现的PiFM成像空间分辨率约为0.7 nm。单纳米尺度的光致场可视化对于光催化剂、光学功能器件和光学操纵等应用至关重要。