论文标题
在光学波导中使用轨道角动量模式对Aharonov-Bohm笼子的实验观察
Experimental observation of Aharonov-Bohm caging using orbital angular momentum modes in optical waveguides
论文作者
论文摘要
人造量规场的发现,控制了否则避开标准电场或磁场影响的未充电颗粒的动力学,彻底改变了量子模拟的场。因此,开发新技术来诱导这些领域对于增强光子结构中的量子模拟至关重要。在这里,我们通过修改输入状态,在光子晶格中实验证明了人造量规场的产生,从而克服了沿进化的几何形状或施加外部场的存在的需要。特别是,我们表明,当带有轨道角动量的光束注入具有某些构型的波导晶格中时,自然会出现有效的磁通量。为了证明这种通量的存在,我们测量了所得的aharonov-bohm笼子效应。因此,我们通过更改输入状态的拓扑充电,为在一个单个结构中访问不同拓扑制度的方式铺平了道路,这代表了光学量子模拟的重要一步。
The discovery of artificial gauge fields, controlling the dynamics of uncharged particles that otherwise elude the influence of standard electric or magnetic fields, has revolutionized the field of quantum simulation. Hence, developing new techniques to induce those fields is essential to boost quantum simulation in photonic structures. Here, we experimentally demonstrate in a photonic lattice the generation of an artificial gauge field by modifying the input state, overcoming the need to modify the geometry along the evolution or imposing the presence of external fields. In particular, we show that an effective magnetic flux naturally appears when light beams carrying orbital angular momentum are injected into waveguide lattices with certain configurations. To demonstrate the existence of that flux, we measure the resulting Aharonov-Bohm caging effect. Therefore, we prove the possibility of switching on and off artificial gauge fields by changing the topological charge of the input state, paving the way to access different topological regimes in one single structure, which represents an important step forward for optical quantum simulation.