Application of quantum imaging in biology.

IF 3.2 2区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Biomedical optics express Pub Date : 2025-07-23 eCollection Date: 2025-08-01 DOI:10.1364/BOE.566801
Hoda Lotfipour, Hassan Sobhani, Mohamad Taghi Dejpasand, Morteza Sasani Ghamsari
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引用次数: 0

Abstract

Application of quantum imaging in biology In biology, one of the main challenges is achieving a balance between high precision and minimal invasiveness in measurements. With cutting-edge techniques, the primary limitations to experimental accuracy often stem not from device-related noise but from fundamental physical constraints. Since nature is the underlying source of these constraints, it makes sense to go to quantum mechanics, the most basic theory of matter, for a solution. Improved measurement performance may be possible through the application of quantum effects, particularly those pertaining to coherence. It offers useful tools that, at the very least, offer interesting technical solutions even when they don't fully display cohesive behaviors. One of the primary applications of quantum technologies is quantum metrology, which uses the non-classical state of light to measure physical properties with great resolution and sensitivity. For biological applications, the quantum state of light may be utilized for precision enhancement and quantum noise reduction. This explains how quantum metrology, and particularly quantum imaging, can be used to enhance picture quality, measure shifts in quantum scales in biological systems, and boost imaging precision and resolution using quantum light sources, devices, and protocols. In this study, we give a summary of the possible uses of quantum technology in biology and medicine. This review presents a comprehensive overview of how quantum technologies can be applied in biology and medicine. It also explores the latest developments in quantum biological imaging, quantum microscopy, and quantum materials, while discussing the challenges and opportunities these emerging technologies bring.

量子成像在生物学中的应用。
在生物学中,一个主要的挑战是在测量中实现高精度和最小侵入性之间的平衡。使用尖端技术,实验精度的主要限制通常不是来自设备相关的噪声,而是来自基本的物理限制。由于自然是这些约束的潜在来源,因此求助于量子力学——物质的最基本理论——来寻求解决方案是有意义的。通过应用量子效应,特别是相干效应,可以提高测量性能。它提供了有用的工具,至少,即使它们没有完全显示内聚行为,也提供了有趣的技术解决方案。量子技术的主要应用之一是量子计量,它利用光的非经典状态来测量物理性质,具有很高的分辨率和灵敏度。在生物应用方面,光的量子态可用于提高精度和降低量子噪声。这解释了量子计量学,特别是量子成像,如何用于提高图像质量,测量生物系统中量子尺度的变化,以及使用量子光源、设备和协议提高成像精度和分辨率。在这项研究中,我们总结了量子技术在生物学和医学中的可能用途。本文综述了量子技术在生物学和医学中的应用。它还探讨了量子生物成像、量子显微镜和量子材料的最新发展,同时讨论了这些新兴技术带来的挑战和机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedical optics express
Biomedical optics express BIOCHEMICAL RESEARCH METHODS-OPTICS
CiteScore
6.80
自引率
11.80%
发文量
633
审稿时长
1 months
期刊介绍: The journal''s scope encompasses fundamental research, technology development, biomedical studies and clinical applications. BOEx focuses on the leading edge topics in the field, including: Tissue optics and spectroscopy Novel microscopies Optical coherence tomography Diffuse and fluorescence tomography Photoacoustic and multimodal imaging Molecular imaging and therapies Nanophotonic biosensing Optical biophysics/photobiology Microfluidic optical devices Vision research.
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