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二次谐波成像及其在生物医学中的应用
引用本文:屈军乐,陈丹妮,杨建军,许改霞,林子扬,刘立新,牛憨笨.二次谐波成像及其在生物医学中的应用[J].深圳大学学报(理工版),2006,23(1):1-9.
作者姓名:屈军乐  陈丹妮  杨建军  许改霞  林子扬  刘立新  牛憨笨
作者单位:1. 深圳大学光电子学研究所,深圳,518060
2. 南开大学现代光学研究所,天津,300071
基金项目:中国科学院资助项目;广东省博士启动基金;教育部重点实验室基金
摘    要:二次谐波成像是近年发展起来的一种三维光学成像技术,具有非线性光学成像所特有的高空间分辨率和高成像深度,可避免双光子荧光成像中的荧光漂白效应,是一种理想的非侵入生物活体成像方法.生物组织的病变往往会引起微观结构的变化,而二次谐波信号对组织的结构对称性变化高度敏感。因此二次谐波成像对于某些疾病的早期诊断或术后治疗监测,具有很好的生物医学应用前景.介绍二次谐波成像的发展现状,生物组织中二次谐波信号的产生机理,二次谐波成像的实现手段及其在生物医学领域的应用.

关 键 词:二次谐波  非线性光学  生物组织  显微成像  早期诊断  高分辨率  活体成像
文章编号:1000-2618(2006)01-0001-09
收稿时间:2005-09-12
修稿时间:2005-11-11

Second harmonic generation imaging and its applications in biomedicine
QU Jun-le,CHEN Dan-ni,YANG Jian-jun,XU Gai-xia,LIN Zi-yang,LIU Li-xin,NIU Han-ben.Second harmonic generation imaging and its applications in biomedicine[J].Journal of Shenzhen University(Science &engineering),2006,23(1):1-9.
Authors:QU Jun-le  CHEN Dan-ni  YANG Jian-jun  XU Gai-xia  LIN Zi-yang  LIU Li-xin  NIU Han-ben
Affiliation:1.Institute of Optoelectronics Shenzhen University Shenzhen 518060 P. R. China;2.Institute of Modern Optics Nankai University Tianjin 300071 P. R. China
Abstract:Second harmonic generation imaging (SHGI) is an emerging 3-D optical imaging modality in biomedicine. Because of its inherent nonlinear mechanism, SHGI has the unique advantages of high spatial resolution, large penetration depth and non-photobleaching, and is accepted as one of the promising and non-invasive biomedical imaging modalities. Pathological changes in biological tissues usually cause changes in their microstructure. Since the second harmonic generation (SHG) signal is highly sensitive to the symmetry change of the microstructure, SHGI can be used for the early diagnosis of diseases and the monitoring of aftertreatment in clinics. This paper provides an overview of SHGI technology, signal mechanism in biological tissues, and the implementation and applications of SHGI in biomedicine.
Keywords:second harmonic generation  nonlinear optical imaging  biological tissue  microscopy  early diagnosis  high resolution  in vivo
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