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1.
Opt Lett ; 43(11): 2450-2453, 2018 Jun 01.
Artigo em Inglês | MEDLINE | ID: mdl-29856401

RESUMO

We demonstrate time domain diffuse correlation spectroscopy at quasi-null source-detector separation by using a fast time-gated single-photon avalanche diode without the need of time-tagging electronics. This approach allows for increased photon collection, simplified real-time instrumentation, and reduced probe dimensions. Depth discriminating, quasi-null distance measurement of blood flow in a human subject is presented. We envision the miniaturization and integration of matrices of optical sensors of increased spatial resolution and the enhancement of the contrast of local blood flow changes.


Assuntos
Velocidade do Fluxo Sanguíneo/fisiologia , Análise Espectral/métodos , Adulto , Feminino , Humanos , Fibras Ópticas , Fótons , Espalhamento de Radiação
2.
Biomed Opt Express ; 8(11): 5311-5325, 2017 Nov 01.
Artigo em Inglês | MEDLINE | ID: mdl-29188122

RESUMO

Diffuse correlation spectroscopy (DCS), combined with time-resolved reflectance spectroscopy (TRS) or frequency domain spectroscopy, aims at path length (i.e. depth) resolved, non-invasive and simultaneous assessment of tissue composition and blood flow. However, while TRS provides a path length resolved data, the standard DCS does not. Recently, a time domain DCS experiment showed path length resolved measurements for improved quantification with respect to classical DCS, but was limited to phantoms and small animal studies. Here, we demonstrate time domain DCS for in vivo studies on the adult forehead and the arm. We achieve path length resolved DCS by means of an actively mode-locked Ti:Sapphire laser that allows high coherence pulses, thus enabling adequate signal-to-noise ratio in relatively fast (~1 s) temporal resolution. This work paves the way to the translation of this approach to practical in vivo use.

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