Application of quantum entanglement induced polarization for dual-positron and prompt gamma imaging.

IF 1.2 Q3 Computer Science
Bio-Algorithms and Med-Systems Pub Date : 2023-01-01 Epub Date: 2023-12-30 DOI:10.5604/01.3001.0054.1817
Gregory Romanchek, Greyson Shoop, Shiva Abbaszadeh
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引用次数: 0

Abstract

The intrinsic resolution of Positron Emission Tomography (PET) imaging is bound by positron range effects, wherein the radioactive decay of the imaging tracer occurs at a disjoint location from positron annihilation. Compounding this issue are the variable ranges positrons achieve, depending on tracer species (the energy they are emitted with) and the medium they travel in (bone vs soft tissue, for example) - causing the range to span more than an order of magnitude across various study scenarios (~0.19 mm to ~6.4 mm). Radioisotopes, such as Zr-89, exhibit dual emissions of positron and prompt gammas, offering an opportunity for accurate tracer positioning as prompt gammas originate from the tracer location. These multi-emission radiotracers have historically suffered from increased noise corresponding to the third gamma interfering in annihilation gamma coincidence pairing. Recent advancements, however, have brought to light the unique property of annihilation gammas having scattering kinematics distinct from random gamma pairs. These properties are born from the singular quantum entanglement state available to the gamma pair following para-positronium decay which prescribes linearly orthogonal polarization. Such coherent polarization is not shared by prompt gamma emissions, offering an opportunity for their discrimination. We present an investigation into this technique, comparing the distribution of relevant scattering kinematics of entangled annihilation gammas and corresponding prompt gammas via a Monte Carlo simulation.

量子纠缠诱导偏振在双正电子和瞬时伽马成像中的应用。
正电子发射断层扫描(PET)成像的内在分辨率受到正电子射程效应的限制,即成像示踪剂的放射性衰变发生在与正电子湮灭不相连的位置。使这一问题更加复杂的是,正电子的射程因示踪剂种类(它们发射的能量)和传播介质(例如骨骼和软组织)的不同而不同--导致不同研究方案中的射程相差一个数量级以上(从 ~0.19 毫米到 ~6.4 毫米)。放射性同位素(如 Zr-89)具有正电子和瞬发伽马的双重发射,为准确定位示踪剂提供了机会,因为瞬发伽马来自示踪剂位置。由于第三伽马干扰了湮灭伽马巧合配对,这些多发射放射性示踪剂历来受到噪声增加的影响。然而,最近的研究进展揭示了湮灭伽马具有不同于随机伽马对的散射运动学的独特性质。这些特性源于伽马对在对位正电子衰变后的奇异量子纠缠态,它规定了线性正交极化。这种相干的极化并不为及时伽马射线所共享,这就为辨别它们提供了机会。我们通过蒙特卡洛模拟比较了纠缠湮灭伽马射线和相应的瞬发伽马射线的相关散射运动学分布,从而对这一技术进行了研究。
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来源期刊
Bio-Algorithms and Med-Systems
Bio-Algorithms and Med-Systems MATHEMATICAL & COMPUTATIONAL BIOLOGY-
CiteScore
3.80
自引率
0.00%
发文量
3
期刊介绍: The journal Bio-Algorithms and Med-Systems (BAMS), edited by the Jagiellonian University Medical College, provides a forum for the exchange of information in the interdisciplinary fields of computational methods applied in medicine, presenting new algorithms and databases that allows the progress in collaborations between medicine, informatics, physics, and biochemistry. Projects linking specialists representing these disciplines are welcome to be published in this Journal. Articles in BAMS are published in English. Topics Bioinformatics Systems biology Telemedicine E-Learning in Medicine Patient''s electronic record Image processing Medical databases.
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