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One- and two-photon phase-sensitive coherent control of total ionization yields in the presence of static electric fields

机译:在存在静电场的情况下对总电离率的单光子和双光子相敏相干控制

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We experimentally demonstrate one- and two-photon phase sensitive coherent control over the excitation and ionization of Rydberg states of Sr atom in the presence of a static homogeneous electric field. Without the field this excitation scheme can only be employed for the manipulation of angular distributions of photoelectrons and molecular photofragmentation products. Total atomic excitation-ionization yields cannot be modulated because the final states excited by each pathway are orthogonal to each other. When, however, a static electric field is applied, s, p and d character is admixed into the final Rydberg state, which has no definite parity anymore. Hence, the excitation of the target Stark state from the ground state is possible with either two (fundamental laser frequency) photons or one (second harmonic frequency) photon and its population and further ionization can be controlled by varying the relative phase between the two radiation fields. The concept is successfully tested below as well as above the classical saddle point and with either mutually crossed or parallel linear laser beam polarizations (while the second harmonic beam polarization vector is always parallel to the static field direction). We examine the behavior of the obtained photoionization signal modulation depth V as a function of the static field strength F for otherwise identical experimental conditions. The V(F) curve exhibits a maximum (typically similar to 65%-85%) at a field strength value that is dictated by the interplay between the employed laser power densities, one- and two-photon transition dipole moments, and relative amounts of field-dependent s, p and d character. It is therefore shown that the static field strength may serve as an additional, experimentally adjustable, control parameter in a fashion complementary to both the intensities and relative phase of the two light beams.
机译:我们通过实验证明了在静态均匀电场的存在下,Sr原子的Rydberg态的激发和电离的一光子相和两光子相敏相干控制。在没有该领域的情况下,该激发方案只能用于操纵光电子和分子光碎裂产物的角度分布。由于每个路径激发的最终状态彼此正交,因此总原子激发电离产率无法调节。但是,当施加静电电场时,s,p和d字符会混入最终的Rydberg状态,该状态不再具有确定的奇偶性。因此,可以利用两个(基本激光频率)光子或一个(二次谐波频率)光子从基态激发目标斯塔克态,并且可以通过改变两个辐射之间的相对相位来控制其种群和进一步电离领域。该概念在经典鞍点以下和之上以及相互交叉或平行的线性激光束偏振(而二次谐波光束偏振矢量始终平行于静态场方向)上成功进行了测试。在其他相同的实验条件下,我们检查了获得的光电离信号调制深度V的行为与静态场强F的关系。 V(F)曲线在场强值处显示最大值(通常类似于65%-85%),该强度由所采用的激光功率密度,一光子跃迁和两光子跃迁偶极矩以及相对量之间的相互作用决定取决于字段的s,p和d字符。因此表明,静态场强可以以与两个光束的强度和相对相位互补的方式用作实验上可调节的附加控制参数。

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