Brezinski M E
Center for Optics and Modern Physics, Brigham and Women's Hospital, Boston, MA, USA.
Harvard Medical School, Boston, MA, USA.
J Lasers Opt Photonics. 2018;5(1). doi: 10.4172/2469-410X.1000176. Epub 2017 Dec 30.
Optical coherence tomography has become an important imaging technology in cardiology and ophthalmology, with other applications under investigations. Major advances in optical coherence tomography (OCT) imaging are likely to occur through a quantum field approach to the technology. In this paper, which is the first part in a series on the topic, the quantum basis of OCT first order correlations is expressed in terms of full field quantization. Specifically first order correlations are treated as the linear sum of single photon interferences along indistinguishable paths. Photons and the electromagnetic (EM) field are described in terms of quantum harmonic oscillators. While the author feels the study of quantum second order correlations will lead to greater paradigm shifts in the field, addressed in part II, advances from the study of quantum first order correlations are given. In particular, ranging errors are discussed (with remedies) from vacuum fluctuations through the detector port, photon counting errors, and position probability amplitude uncertainty. In addition, the principles of quantum field theory and first order correlations are needed for studying second order correlations in part II.
光学相干断层扫描已成为心脏病学和眼科领域的一项重要成像技术,其他应用正在研究中。光学相干断层扫描(OCT)成像的重大进展可能通过该技术的量子场方法实现。在本文(该主题系列的第一部分)中,OCT一阶相关性的量子基础通过全场量子化来表达。具体而言,一阶相关性被视为沿不可区分路径的单光子干涉的线性总和。光子和电磁(EM)场用量子谐振子来描述。虽然作者认为量子二阶相关性的研究将在该领域带来更大的范式转变(将在第二部分讨论),但本文给出了量子一阶相关性研究的进展。特别是,讨论了从通过探测器端口的真空涨落、光子计数误差和位置概率幅不确定性产生的测距误差(及其补救措施)。此外,第二部分研究二阶相关性需要量子场论和一阶相关性的原理。