Mortimer B. Zuckerman Mind Brain Behavior Institute, Columbia University, New York, NY 10027, USA.
Department of Biochemistry and Molecular Biophysics, Columbia University, New York, NY 10032, USA.
Cell Rep Methods. 2023 Jan 12;3(1):100387. doi: 10.1016/j.crmeth.2022.100387. eCollection 2023 Jan 23.
Ponderomotive phase plates have shown that temporally consistent phase contrast is possible within electron microscopes via high-fluence static laser modes resonating in Fabry-Perot cavities. Here, we explore using pulsed laser beams as an alternative method of generating high fluences. We find through forward-stepping finite element models that picosecond or shorter interactions are required for meaningful fluences and phase shifts, with higher pulse energies and smaller beam waists leading to predicted higher fluences. An additional model based on quasi-classical assumptions is used to discover the shape of the phase plate by incorporating the oscillatory nature of the electric field. From these results, we find the transient nature of the laser pulses removes the influence of Kapitza-Dirac diffraction patterns that appear in the static resonator cases. We conclude by predicting that a total laser pulse energy of 8.7 μJ is enough to induce the required π/2 phase shift for Zernike-like phase microscopy.
庞特龙动相位板表明,通过在法布里-珀罗腔中共振的高能量静态激光模式,在电子显微镜中可以实现时间一致的相位对比。在这里,我们探索使用脉冲激光束作为产生高能量的替代方法。我们通过前向有限元模型发现,皮秒或更短的相互作用对于有意义的能量和相移是必需的,更高的脉冲能量和更小的光束腰导致预测的更高能量。一个基于准经典假设的附加模型被用来通过包含电场的振荡性质来发现相位板的形状。从这些结果中,我们发现激光脉冲的瞬态性质消除了在静态谐振器情况下出现的卡皮查-狄拉克衍射模式的影响。我们的结论是,只需 8.7 μJ 的总激光脉冲能量就足以诱导所需的 Zernike 类似相位显微镜的 π/2 相移。