Center for Soft and Living Matter, Institute for Basic Science, Ulsan 44919, South Korea.
Center for Soft and Living Matter, Institute for Basic Science, Ulsan 44919, South Korea;
Proc Natl Acad Sci U S A. 2018 Jun 26;115(26):6554-6559. doi: 10.1073/pnas.1803652115. Epub 2018 Jun 13.
We amend the general belief that waves with extended spherical wavefront focus at their center of curvature. Instead, when the spherical symmetry of waves is broken by propagating them through a finite aperture along an average direction, the forward/backward symmetry is broken and the focal volume shifts its center backward along that direction. The extent of this focal shift increases as smaller apertures are used, up to the point that the nominal focal plane is out of focus. Furthermore, the loss of axial symmetry with noncircular apertures causes distinct focal shifts in distinct axial planes, and the resulting astigmatism possibly degrades the axial focusing resolution. Using experiments and simulations, focal shift with noncircular apertures is described for classical and temporal focusing. The usefulness of these conclusions to improve imaging resolution is demonstrated in a high-resolution optical microscopy application, namely line-temporal focusing microscopy. These conclusions follow from fundamental symmetries of the wave geometry and matter for an increasing number of emerging optical techniques. This work offers a general framework and strategy to understand and improve virtually any wave-based application whose efficacy depends on optimal focusing and may be helpful when information is transmitted by waves in applications from electromagnetic communications, to biological and astronomical imaging, to lithography and even warfare.
我们修正了一个普遍的观点,即扩展的球面波前在其曲率中心聚焦。相反,当通过沿平均方向在有限孔径中传播来破坏波的球对称性时,前后对称性被破坏,焦点体积沿该方向向后移动其中心。随着使用更小的孔径,这种焦点偏移的程度增加,直到标称焦平面失焦。此外,非圆形孔径的轴对称性丧失导致在不同的轴向平面上产生明显的焦点偏移,并且由此产生的像散可能会降低轴向聚焦分辨率。使用实验和模拟,描述了非圆形孔径的经典和时变聚焦的焦点偏移。在高分辨率光学显微镜应用中,即线时聚焦显微镜,证明了这些结论对提高成像分辨率的有用性。这些结论源于越来越多新兴光学技术的波几何和物质的基本对称性。这项工作为理解和改进几乎任何依赖于最佳聚焦的基于波的应用提供了一个通用框架和策略,并且在从电磁通信到生物和天文成像、光刻,甚至战争等应用中通过波传输信息时可能会有所帮助。