Carter Samuel G, Bracker Allan S, Yakes Michael K, Zalalutdinov Maxim K, Kim Mijin, Kim Chul Soo, Lee Bumsu, Gammon Daniel
Naval Research Laboratory , Washington , DC 20375 , United States.
KeyW Corporation , 7740 Milestone Parkway, Suite 150 , Hanover , Maryland 21076 , United States.
Nano Lett. 2019 Sep 11;19(9):6166-6172. doi: 10.1021/acs.nanolett.9b02207. Epub 2019 Aug 12.
The interaction of quantum systems with mechanical resonators is of practical interest for applications in quantum information and sensing and also of fundamental interest as hybrid quantum systems. Achieving a large and tunable interaction strength is of great importance in this field as it enables controlled access to the quantum limit of motion and coherent interactions between different quantum systems. This has been challenging with solid state spins, where typically the coupling is weak and cannot be tuned. Here we use pairs of coupled quantum dots embedded within cantilevers to achieve a high coupling strength of the singlet-triplet spin system to mechanical motion through strain. Two methods of achieving strong, tunable coupling are demonstrated. The first is through different strain-induced energy shifts for the two QDs when the cantilever vibrates, resulting in changes to the exchange interaction. The second is through a laser-driven AC Stark shift that is sensitive to strain-induced shifts of the optical transitions. Both of these mechanisms can be tuned to zero with electrical bias or laser power, respectively, and give large spin-mechanical coupling strengths.
量子系统与机械谐振器的相互作用在量子信息与传感应用中具有实际意义,同时作为混合量子系统也具有重要的基础研究价值。在该领域,实现大且可调的相互作用强度至关重要,因为这能实现对运动量子极限的可控访问以及不同量子系统之间的相干相互作用。对于固态自旋而言,这一直具有挑战性,因为其耦合通常较弱且不可调。在此,我们利用嵌入悬臂梁内的耦合量子点对,通过应变实现单重态 - 三重态自旋系统与机械运动的高耦合强度。展示了两种实现强且可调耦合的方法。第一种是当悬臂梁振动时,两个量子点因不同的应变诱导能移而导致交换相互作用发生变化。第二种是通过对光学跃迁的应变诱导能移敏感的激光驱动交流斯塔克位移。这两种机制均可分别通过电偏置或激光功率调至零,并给出大的自旋 - 机械耦合强度。