论文标题
量子增强了多层样本的探测
Quantum enhanced probing of multilayered-samples
论文作者
论文摘要
量子传感利用量子现象来增强物理系统和生物实体的经典参数的检测和估计,尤其是为了克服其经典对应物的低效率。量子传感中的一种特别有希望的方法是量子光学相干断层扫描,该量子层析成像依赖于非古典光源来重建多层材料的内部结构。与传统的经典探测相比,量子光学相干断层扫描提供了增强的分辨率图像,并且不受均衡分散体的影响。该技术的主要局限性之一在于是伪影的出现,即出现在巧合干涉图中的假结构,这阻碍了检索断层扫描所需的信息。在这里,通过利用完整的理论模型与快速的遗传算法结合使用,我们成功地提取了复杂多层样本的形态,并彻底区分了真实的接口,文物和回声。我们通过将模型和算法的预测与通过泵波长的受控变化进行比较,测试模型和算法的有效性。我们的结果可能会导致对复杂结构的实用高分辨率探测的发展,以及对生物医学成像/感应,临床应用和材料科学的可依赖材料的非侵入性扫描。
Quantum sensing exploits quantum phenomena to enhance the detection and estimation of classical parameters of physical systems and biological entities, particularly so as to overcome the inefficiencies of its classical counterparts. A particularly promising approach within quantum sensing is Quantum Optical Coherence Tomography which relies on non-classical light sources to reconstruct the internal structure of multilayered materials. Compared to traditional classical probing, Quantum Optical Coherence Tomography provides enhanced-resolution images and is unaffected by even-order dispersion. One of the main limitations of this technique lies in the appearance of artifacts and echoes, i.e. fake structures that appear in the coincidence interferogram, which hinder the retrieval of information required for tomography scans. Here, by utilizing a full theoretical model, in combination with a fast genetic algorithm to post-process the data, we successfully extract the morphology of complex multilayered samples and thoroughly distinguish real interfaces, artifacts, and echoes. We test the effectiveness of the model and algorithm by comparing its predictions to experimentally-generated interferograms through the controlled variation of the pump wavelength. Our results could potentially lead to the development of practical high-resolution probing of complex structures and non-invasive scanning of photo-degradable materials for biomedical imaging/sensing, clinical applications, and materials science.