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Permanent-magnet Faraday isolator with the field intensity of more than 3 tesla

机译:永磁法拉第隔离器,具有超过3个特斯拉的田间强度

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摘要

A permanent-magnet system with a maximum magnetic field exceeding 3 T, which is a record value for Faraday isolators, has been created. The magnitude of the field in the system is close to the theoretical limit that can be achieved at an optimal magnetization distribution. This is possible thanks to the use in the central area of the system of magnetic conductors that possess a saturation induction higher than the residual induction of the strongest magnets and provide more optimal magnetization distribution than magnets. But the main feature of the system is control of demagnetizing fields in the center of the system by optimizing the position and shape of magnetic conductors, thus retaining the maximum volume of the magnets in the core of the system without the risk of their magnetization reversal. The technology of controlling demagnetizing fields by means of magnetic conductors is proven for the first time. The created system is promising for the development of Faraday isolators for high-power lasers as it allows decreasing the length of the magneto-optical element and reducing parasitic heat generation. Record results on the maximum permissible operating power of Faraday isolators based on CeF3 and TSAG crystals were obtained with the use of this system. It is also promising for the development of Faraday isolators for ?eye-safe? and mid-infrared radiation since the Verdet constant of magneto-active crystals in these wavelength ranges reduces substantially compared to the near-infrared. The creation of strong magnetic field becomes of principal importance for providing a needed angle of Faraday rotation.
机译:已经创建了具有超过3 T的最大磁场的永磁体系,这是Faraday隔离器的记录值。系统中的场的大小接近可以在最佳磁化分布处实现的理论极限。这是由于在具有高于最强磁体的剩余诱导的饱和感应的磁导体的中心区域中的使用,这是可能的,这是可能的。但是系统的主要特征是通过优化磁导体的位置和形状来控制系统中心的去磁场,从而将磁体的最大体积保持在系统的核心而不会磁化反转的风险。通过磁导体控制退磁场的技术是第一次证明的。创建的系统是对高功率激光器的法拉第隔离器的开发,因为它允许降低磁光元件的长度并减少寄生热产生。通过使用该系统获得了基于CEF3和TSAG晶体的法拉第隔离器的最大允许操作功率的记录结果。这也很有希望开发Faraday隔离器吗?眼睛安全?和中红外辐射,因为这些波长范围内的磁性活性晶体的Verdet常数基本上与近红外线相比减少。强磁场的创建成为提供所需角度的法拉第旋转的主要重要性。

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