| Literature DB >> 28350003 |
Yisheng Gao1,1, Shuai Wang1,1, Can Huang1,1, Ningbo Yi1, Kaiyang Wang1,1, Shumin Xiao1,2, Qinghai Song1,2.
Abstract
Hybrid lead halide perovskites have made great strides in next-generation light-harvesting and light emitting devices. Recently, they have also shown great potentials in nonlinear optical materials. Two-photon absorption and two-photon light emission have been thoroughly studied in past two years. However, the three-photon processes are rarely explored, especially for the laser emissions. Here we synthesized high quality CH3NH3PbBr3 perovskite microstructures with solution processed precipitation method and studied their optical properties. When the microstructures are pumped with intense 1240 nm lasers, we have observed clear optical limit effect and the band-to-band photoluminescence at 540 nm. By increasing the pumping density, whispering-gallery-mode based microlasers have been achieved from CH3NH3PbBr3 perovskite microplate and microrod for the first time. This work demonstrates the potentials of hybrid lead halide perovskites in nonlinear photonic devices.Entities:
Year: 2017 PMID: 28350003 PMCID: PMC5368977 DOI: 10.1038/srep45391
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Top-view SEM image of the synthesized microstructures. The insets show the high resolution SEM images of microplate and microrod. (b) XRD spectrum of CH3NH3PbBr3 microstructures.
Figure 2(a) Linear absorption of the CH3NH3PbBr3 microstructures. (b) The transmission of an ultrashort pulse at 1240 nm as a function of incident power. The dashed line represent the fitted curve following equation (2). (c) The schematic pictures of the three-photon absorption. (d) The PL spectra under one-photon and three-photon excitations.
Figure 3(a) Top view SEM image of a rectangle CH3NH3PbBr3 microplate. (b) The emission spectrum of the microplate with the pumping density at 197 mJ/cm2. The inset is the corresponding fluorescent microscope image. (c) The integrated output intensity as a function of pumping density. Inset shows the polarization of emitted laser in (b). (d) The numerical calculated cavity Q factors within the lasing wavelength range. The inset is the field pattern (Ez) of mode-1.
Figure 4(a) Top view SEM image of a CH3NH3PbBr3 microrod. (b) The emission spectrum of transverse lasing mode in the microrod with the pumping density at 138.5 mJ/cm2. Inset shows the fluorescent microscope image. (c) The dependence of output intensity (dots) and the linewidth (squares) on the pumping density. (d) The numerical calculation results of resonant modes in microrod. Inset is the field pattern (Ez) of the highest Q mode.