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Local determination of hemoglobin concentration and degree of oxygenation in tissue by pulsed photoacoustic spectroscopy

机译:脉冲光声光谱法局部测定组织中的血红蛋白浓度和氧合度

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Abstract: Pulsed-photoacoustic spectroscopy in the near IR portion of the optical spectrum was used as a local technique for quantitative monitoring of tissue hemoglobin concentration and its oxygenation state. A pulsed, tunable optical source coupled to a 1mm-diameter optical fiber cable was used to deliver optical energy to the tissue under study. The fiber was placed either on the exterior surface or inserted into the tissue. An ultrasonic signal was produced in the tissue as a result of the absorbed light pulse energy. Since the rate of conversion of laser light energy to heat was rapid and the laser pulse as much shorter than the tissue thermal- diffusion length, the ultrasonic signal amplitude was proportional to the energy absorbed. Spectra of absorbing compounds were obtained by measuring the variation in the acoustic signal with source wavelength. In contrast with near-IR spectroscopic techniques that measure diffuse light transmission and assume knowledge of the pathlength of light traveling through tissues in order to determine the absorption coefficient, the photoacoustic response is produced directly by light absorption. Light scattering merely modifies the spatial distribution of the absorbed energy. Our studies demonstrate that photoacoustic spectra obtained both in vitro and in vivo allow determination of relative changes in the concentration of oxy- and de- oxyhemoglobin. !!52
机译:摘要:光谱的近红外部分中的脉冲光声光谱技术被用作定量监测组织血红蛋白浓度及其氧合状态的局部技术。耦合到直径为1mm的光缆的脉冲可调光源用于将光能传递到研究中的组织。将纤维放置在外表面上或插入组织中。由于吸收的光脉冲能量,在组织中产生了超声波信号。由于激光能量转换为热的速度很快,并且激光脉冲比组织的热扩散长度短得多,因此超声信号幅度与吸收的能量成比例。通过测量声信号随光源波长的变化获得吸收化合物的光谱。与测量散射光透射率并假设知道穿过组织的光的光程长度以确定吸收系数的近红外光谱技术相反,光声响应直接由光吸收产生。光散射仅改变吸收能量的空间分布。我们的研究表明,在体外和体内获得的光声光谱可以确定氧合和脱氧血红蛋白浓度的相对变化。 !! 52

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