论文标题
模拟与捕获的离子的圆锥形交叉点
Simulating conical intersections with trapped ions
论文作者
论文摘要
圆锥形交集在分子物理学和光化学中很常见,并且经常被调用以解释观察到的反应产物。当激发的电子势能表面与核位置的坐标空间中的地面电子势能表面相交时,可能会发生圆锥交叉。理论预测,圆锥形交集将导致在地面势能表面上的波袋的几何相。尽管已经通过实验观察到了圆锥形的交叉点,但在分子系统中尚未观察到几何相。在这里,我们使用被困的原子离子系统进行圆锥形交叉点进行量子模拟。被困的原子离子的内部状态用作电子状态,原子核的运动被编码为离子正常运动模式。模拟电子电位是通过用近谐振激光器将状态依赖性力施加到离子的。我们使用绝热状态制备进行实验观察地面表面上的几何阶段,然后进行运动状态测量。我们的实验显示了在量子模拟器中结合自旋和运动自由度的优势。
Conical intersections are common in molecular physics and photochemistry, and are often invoked to explain observed reaction products. A conical intersection can occur when an excited electronic potential energy surface intersects with the ground electronic potential energy surface in the coordinate space of the nuclear positions. Theory predicts that the conical intersection will result in a geometric phase for a wavepacket on the ground potential energy surface. Although conical intersections have been observed experimentally, the geometric phase has not been observed in a molecular system. Here we use a trapped atomic ion system to perform a quantum simulation of a conical intersection. The internal state of a trapped atomic ion serves as the electronic state and the motion of the atomic nuclei are encoded into the normal modes of motion of the ions. The simulated electronic potential is constructed by applying state-dependent forces to the ion with a near-resonant laser. We experimentally observe the geometric phase on the ground-state surface using adiabatic state preparation followed by motional state measurement. Our experiment shows the advantage of combining spin and motion degrees of freedom in a quantum simulator.