光子计数-探测器CT:技术概述和辐射剂量降低。

IF 1.8 4区 医学 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Liqiang Ren, Xinhui Duan, Richard Ahn, Fernando Kay, Laleh Daftaribesheli, Wei Zhou, Jeffrey Guild, Lakshmi Ananthakrishnan
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引用次数: 0

摘要

光子计数检测器计算机断层扫描(PCD-CT)代表了CT技术的革命性进步,克服了传统基于能量积分检测器(EID)系统的局限性。它使用半导体材料,如碲化镉、碲化镉锌和硅,直接计算x射线光子,同时解析它们的能级。这种能量分辨能力确保了低光子和高能光子的同等权重,消除了电子噪声,并实现了特定材料的成像。探测器中没有物理间隔(用于eid以防止光光子串扰)导致PCD-CT的有效探测器像素更小,从而提高了检测效率和空间分辨率。这些创新共同提高了诊断的准确性,同时显著降低了辐射剂量。本文全面概述了PCD-CT技术,并将其与基于eid的系统进行了比较。它突出的关键优势,如优越的空间和对比度分辨率,光谱成像和降噪。此外,本文还讨论了PCD-CT在心血管、胸部、腹部、肌肉骨骼、神经成像和儿科应用中的辐射剂量降低。尽管前景光明,但PCD-CT仍面临挑战,包括探测器性能不理想、电子复杂性增加以及保持精度的校准要求。解决这些问题对于广泛的临床应用至关重要。随着研究的进展和技术的进步,PCD-CT有望通过将高诊断准确性与提高的放射效率相结合来重塑临床实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photon-Counting-Detector CT: Technology Overview and Radiation Dose Reduction.

Photon-counting detector computed tomography (PCD-CT) represents a transformative advancement in CT technology, overcoming limitations of conventional energy-integrating detector (EID) based systems. It uses semiconductor materials such as cadmium telluride, cadmium zinc telluride, and silicon to directly count x-ray photons while resolving their energy levels. This energy-resolving capability ensures equal weighting of low- and high-energy photons, eliminates electronic noise, and enables material-specific imaging. The absence of physical septa in the detector-used in EIDs to prevent light photon cross-talk-results in smaller effective detector pixels in PCD-CT, enhancing detection efficiency and spatial resolution. These innovations collectively enhance diagnostic accuracy while enabling significant radiation dose reduction. This paper provides a comprehensive overview of PCD-CT technology, comparing it with EID-based systems. It highlights key advantages such as superior spatial and contrast resolution, spectral imaging, and noise reduction. Additionally, the review discusses PCD-CT's radiation dose reduction across cardiovascular, thoracic, abdominal, musculoskeletal, neuroimaging, and pediatric applications. Despite its promise, PCD-CT faces challenges, including non-ideal detector performance, increased electronic complexity, and calibration requirements to maintain accuracy. Addressing these issues will be crucial for widespread clinical adoption. As research progresses and technology improves, PCD-CT is expected to reshape clinical practice by integrating high diagnostic accuracy with improved radiation efficiency.

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来源期刊
British Journal of Radiology
British Journal of Radiology 医学-核医学
CiteScore
5.30
自引率
3.80%
发文量
330
审稿时长
2-4 weeks
期刊介绍: BJR is the international research journal of the British Institute of Radiology and is the oldest scientific journal in the field of radiology and related sciences. Dating back to 1896, BJR’s history is radiology’s history, and the journal has featured some landmark papers such as the first description of Computed Tomography "Computerized transverse axial tomography" by Godfrey Hounsfield in 1973. A valuable historical resource, the complete BJR archive has been digitized from 1896. Quick Facts: - 2015 Impact Factor – 1.840 - Receipt to first decision – average of 6 weeks - Acceptance to online publication – average of 3 weeks - ISSN: 0007-1285 - eISSN: 1748-880X Open Access option
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