Khosravi Mohammadhossein, Wieduwilt Torsten, Zeisberger Matthias, Lorenz Adrian, Schmidt Markus A
Leibniz Institute of Photonic Technology, Jena, Germany.
Abbe Center of Photonics and Faculty of Physics, FSU Jena, Jena, Germany.
Nat Commun. 2025 Jan 8;16(1):507. doi: 10.1038/s41467-024-55805-7.
In this study, we present an unexplored approach for remote focus manipulation using 3D nanoprinted holograms integrated on the end face of multi-core single-mode fibers. This innovative method enables precise focus control within a monolithic metafiber device by allowing light coupled into any of the 37 cores to be precisely focused at predefined locations. Our approach demonstrates significant advances over conventional lenses and offers unique functionalities through computationally designed holograms. This research marks the first successful use of multi-core fibers for remote focus control via 3D nanoprinting, achieving crosstalk-free operation at visible wavelengths. Key findings include strong agreement between design, simulation, and experimental results, highlighting the potential of this technology to improve applications in fields such as biological optics, laser micromachining, telecommunications, and laser surgery. This work opens new avenues for the development of advanced optical systems with superior focus control capabilities.
在本研究中,我们提出了一种利用集成在多芯单模光纤端面上的3D纳米打印全息图进行远程焦点操控的未被探索的方法。这种创新方法通过使耦合到37个芯中任何一个芯的光精确聚焦在预定位置,从而在单片超材料光纤器件内实现精确的焦点控制。我们的方法相较于传统透镜有显著进步,并通过计算设计的全息图提供独特功能。这项研究标志着首次成功利用多芯光纤通过3D纳米打印实现远程焦点控制,在可见光波长下实现了无串扰操作。主要发现包括设计、模拟和实验结果之间的高度一致性,突出了该技术在生物光学、激光微加工、电信和激光手术等领域改善应用的潜力。这项工作为开发具有卓越焦点控制能力的先进光学系统开辟了新途径。