Goodman A J, Tisdale W A
Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Phys Rev Lett. 2015 May 8;114(18):183902. doi: 10.1103/PhysRevLett.114.183902. Epub 2015 May 6.
Second-order nonlinear optical interactions such as sum- and difference-frequency generation are widely used for bioimaging and as selective probes of interfacial environments. However, inefficient nonlinear optical conversion often leads to poor signal-to-noise ratio and long signal acquisition times. Here, we demonstrate the dramatic enhancement of weak second-order nonlinear optical signals via stimulated sum- and difference-frequency generation. We present a conceptual framework to quantitatively describe the interaction and show that the process is highly sensitive to the relative optical phase of the stimulating field. To emphasize the utility of the technique, we demonstrate stimulated enhancement of second harmonic generation (SHG) from bovine collagen-I fibrils. Using a stimulating pulse fluence of only 3 nJ/cm2, we obtain an SHG enhancement >10(4) relative to the spontaneous signal. The stimulation enhancement is greatest in situations where spontaneous signals are the weakest--such as low laser power, small sample volume, and weak nonlinear susceptibility--emphasizing the potential for this technique to improve signal-to-noise ratios in biological imaging and interfacial spectroscopy.
诸如和频与差频产生等二阶非线性光学相互作用被广泛应用于生物成像以及作为界面环境的选择性探针。然而,低效的非线性光学转换常常导致信噪比不佳以及信号采集时间过长。在此,我们展示了通过受激和频与差频产生实现的微弱二阶非线性光学信号的显著增强。我们提出了一个概念框架来定量描述这种相互作用,并表明该过程对激发场的相对光学相位高度敏感。为强调该技术的实用性,我们展示了来自牛I型胶原纤维的二次谐波产生(SHG)的受激增强。使用仅3 nJ/cm²的激发脉冲通量,相对于自发信号,我们获得了大于10⁴的SHG增强。在自发信号最弱的情况下,如低激光功率、小样品体积和弱非线性极化率,刺激增强最为显著,这突出了该技术在改善生物成像和界面光谱中信噪比方面的潜力。