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High Precision Laser Beam Shaping Using Binary-Amplitude DLP~? Spatial Light Modulators

机译:使用二进制幅度DLP的高精度激光束整形空间光调制器

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Laser beams with precisely controlled intensity profiles are essential for many areas of optics and optical physics. We create such beams from real-world lasers: quasi-Gaussian beams obtained directly from a laser and beam-expanding telescope without spatial filtering. Our application is to form optical standing-wave lattices for Bose-Einstein condensates in quantum emulators. This requires controlled amplitude and flat phase, and that the beam be free of temporal modulation from either pixel dithering or refresh cycles. We describe the development of the pattern design algorithms and demonstrate the performance of a high precision beam shaper to make flattop beams and other spatial profiles with similarly low spatial frequency content. The digital micromirror device (DMD) was imaged through a telescope containing a pinhole low-pass filter. An error diffusion algorithm was used to design the initial DMD pixel pattern based on the input beam profile. This pattern was iteratively refined based on output image measurements. We demonstrate forming a variety of beam profiles including flattop beams and beams with 1-D linear intensity variation, both with square and circular cross-sections. Produced beams had less than 0.25% root-mean-square (RMS) error with respect to the target profile and nearly flat phase.
机译:具有精确控制的强度分布的激光束对于光学和光学物理学的许多领域都是必不可少的。我们从现实世界的激光器中创建此类光束:准高斯光束直接从激光器和扩束望远镜获得,而无需进行空间滤波。我们的应用是为量子仿真器中的玻色-爱因斯坦凝聚物形成光学驻波晶格。这需要受控的幅度和平坦相位,并且光束必须不受像素抖动或刷新周期的时间调制。我们描述了图案设计算法的发展,并演示了高精度光束整形器的性能,可制造出具有类似低空间频率含量的平顶光束和其他空间轮廓。通过包含针孔低通滤波器的望远镜对数字微镜设备(DMD)进行成像。误差扩散算法用于根据输入光束轮廓设计初始DMD像素图案。根据输出图像的测量结果,对该模式进行了迭代完善。我们演示了形成各种光束轮廓,包括平顶光束和具有一维线性强度变化的,具有正方形和圆形横截面的光束。相对于目标轮廓和几乎平坦的相位,产生的光束的均方根误差小于0.25%。

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