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Spatial Walk-Off Compensated Beta-Barium Borate Stack for Efficient Deep-UV Generation

机译:空间补偿补偿的Beta-硼酸钡叠层,可有效产生深紫外光

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Beta-Barium Borate (β-BBO) crystal is commonly used in nonlinear frequency conversion from visible to deep ultraviolet (DUV). However, in a single crystal BBO, its large spatial walk-off effect will reduce spatial overlap of ordinary and extraordinary beam, and thus degrade the conversion efficiency. To overcome the restrictions in current DUV conversion systems, Onyx applies adhesive-free bonding technique to replace the single crystal BBO with a spatial Walk-off Compensated (WOC) BBO stack, which is capable of correcting the spatial walk-off while retaining a constant nonlinear coefficient in the adjacent bonding layers. As a result, the β-BBO stack will provide good beam quality, high conversion efficiency, and broader acceptance angle and spectral linewidth, when compared with a single crystal of BBO. In this work, we report on performance of a spatial walk-off compensated β-BBO stack with adhesive-free bonding technique, for efficiently converting from the visible to DUV range. The physics behind the WOC BBO stack are demonstrated, followed by simulation of DUV conversion efficiency in an external resonance cavity. We also demonstrate experimentally the beam quality improvement in a 4-layer WOC BBO stack over a single BBO crystal.
机译:β-硼酸钡(β-BBO)晶体通常用于从可见光到深紫外(DUV)的非线性频率转换。但是,在单晶BBO中,其较大的空间游走效应将减少普通光束和异常光束的空间重叠,从而降低转换效率。为了克服当前DUV转换系统中的限制,Onyx应用了无粘合剂键合技术,以空间漂移补偿(WOC)BBO堆叠代替单晶BBO,该堆叠能够校正空间漂移,同时保持恒定相邻粘结层的非线性系数。结果,与BBO单晶相比,β-BBO堆叠将提供良好的光束质量,高转换效率以及更宽的接收角度和光谱线宽。在这项工作中,我们报告了采用无粘合剂粘结技术进行空间游走补偿的β-BBO堆栈的性能,该技术可有效地将可见光范围转换为DUV范围。演示了WOC BBO堆栈背后的物理原理,然后在外部谐振腔中模拟了DUV转换效率。我们还通过实验证明了在单个BBO晶体上的4层WOC BBO堆栈中光束质量的提高。

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