Lysne Nathan K, Niedermeyer Justin F, Wilson Andrew C, Slichter Daniel H, Leibfried Dietrich
Time and Frequency Division, <a href="https://ror.org/05xpvk416">National Institute of Standards and Technology</a>, 325 Broadway, Boulder, Colorado 80305, USA.
Department of Physics, <a href="https://ror.org/02ttsq026">University of Colorado, Boulder</a>, Colorado 80309, USA.
Phys Rev Lett. 2024 Jul 19;133(3):033201. doi: 10.1103/PhysRevLett.133.033201.
Excess "micromotion" of trapped ions due to the residual radio-frequency (rf) trapping field at their location is often undesirable and is usually carefully minimized. Here, we induce precise amounts of excess micromotion on individual ions by adjusting the local static electric field they experience. Micromotion modulates the coupling of an ion to laser fields, ideally tuning it from its maximum value to zero as the ion is moved away from the trap's rf null. We use tunable micromotion to vary the Rabi frequency of stimulated Raman transitions over two orders of magnitude, and to individually control the rates of resonant fluorescence from three ions under global laser illumination without any changes to the driving light fields. The technique is amenable to situations where addressing individual ions with focused laser beams is challenging, such as tightly packed linear ion strings or two-dimensional ion arrays illuminated from the side.
由于捕获离子所在位置存在残余射频(rf)捕获场而导致的过量“微运动”通常是不理想的,并且通常会被仔细地最小化。在此,我们通过调整单个离子所经历的局部静电场来诱导精确量的过量微运动。微运动会调制离子与激光场的耦合,理想情况下,当离子从陷阱的射频零点移开时,将其耦合从最大值调至零。我们使用可调微运动在两个数量级范围内改变受激拉曼跃迁的拉比频率,并在全局激光照射下单独控制三个离子的共振荧光速率,而无需对驱动光场进行任何改变。该技术适用于使用聚焦激光束寻址单个离子具有挑战性的情况,例如紧密排列的线性离子串或从侧面照射的二维离子阵列。