论文标题

高谐波产生由量子光驱动

High harmonic generation driven by quantum light

论文作者

Gorlach, Alexey, Tzur, Matan Even, Birk, Michael, Krüger, Michael, Rivera, Nicholas, Cohen, Oren, Kaminer, Ido

论文摘要

高谐波产生(HHG)是一个极端的非线性过程,在其中,轻度驱动力的强烈脉冲可以发出驱动频率的高谐波,达到极端紫外线(XUV)和X射线频谱范围。到目前为止,HHG过程始终是由强烈的激光脉冲产生的,这些激光脉冲被很好地描述为经典电磁场。强烈挤压光的产生的进步激励我们重新审视HHG的基本原理,并询问光子光子的光子统计数据可能会改变这一过程,并且通常会改变极端非线性光学的领域。在实验和理论中,光子统计数据在强光与物质的非扰动相互作用中的作用尚未得到探索。在这里,我们表明,HHG的定义光谱特性(例如高原和截止)对驾驶光的光子统计数据很敏感。尽管相干(经典)和Fock光状态诱导已建立的HHG截止法,但与相同强度的经典光相比,热和挤压状态大大超过了截止状态,从而扩大了截止状态。因此,塑造光子的光子统计数据可以在HHG中产生更高的谐波。我们开发了由挤压光驱动的极端非线性光学器件的理论,更普遍地是由任意量子的光态驱动的。我们的工作将量子光学概念引入了强场物理学,作为HHG创建和控制的新自由度,最后表明该领域的实验是可行的。展望未来,由量子光驱动的HHG产生了XUV和X射线的量子状态,从而在新的光谱状态下实现了量子光学的应用。

High harmonic generation (HHG) is an extreme nonlinear process where intense pulses of light drive matter to emit high harmonics of the driving frequency, reaching the extreme ultraviolet (XUV) and x-ray spectral ranges. So far, the HHG process was always generated by intense laser pulses that are well described as a classical electromagnetic field. Advances in the generation of intense squeezed light motivate us to revisit the fundamentals of HHG and ask how the photon statistics of light may alter this process, and more generally alter the field of extreme nonlinear optics. The role of photon statistics in non-perturbative interactions of intense light with matter has remained unexplored in both experiments and theory. Here we show that the defining spectral characteristics of HHG, such as the plateau and cutoff, are sensitive to the photon statistics of the driving light. While coherent (classical) and Fock light states induce the established HHG cutoff law, thermal and squeezed states substantially surpass it, extending the cutoff compared to classical light of the same intensity. Hence, shaping the photon statistics of light enables producing far higher harmonics in HHG. We develop the theory of extreme nonlinear optics driven by squeezed light, and more generally by arbitrary quantum states of light. Our work introduces quantum optical concepts to strong-field physics as new degrees of freedom in the creation and control of HHG, and finally shows that experiments in this field are feasible. Looking forward, HHG driven by quantum light creates quantum states of XUV and X-rays, enabling applications of quantum optics in new spectral regimes.

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