We report results of the proof-of-principle tests of a novel noncontact tissue imaging system. The system utilizes a quasi-null sourcedetector separation approach for time-domain near-infrared spectroscopy, taking advantage of an innovative state-of-the-art fast-gated single photon counting detector. Measurements on phantoms demonstrate the feasibility of the non-contact approach for the detection of optically absorbing perturbations buried up to a few centimeters beneath the surface of a tissuelike turbid medium. The measured depth sensitivity and spatial resolution of the new system are close to the values predicted by Monte Carlo simulations for the inhomogeneous medium and an ideal fast-gated detector, thus proving the feasibility of the non-contact approach for high density diffuse reflectance measurements on tissue. Potential applications of the system are also discussed.
Non-contact time-resolved diffuse reflectance imaging at null source-detector separation
CONTINI, DAVIDE;SPINELLI, LORENZO;PIFFERI, ANTONIO GIOVANNI;CUBEDDU, RINALDO;DALLA MORA, ALBERTO;TOSI, ALBERTO;ZAPPA, FRANCO;
2012-01-01
Abstract
We report results of the proof-of-principle tests of a novel noncontact tissue imaging system. The system utilizes a quasi-null sourcedetector separation approach for time-domain near-infrared spectroscopy, taking advantage of an innovative state-of-the-art fast-gated single photon counting detector. Measurements on phantoms demonstrate the feasibility of the non-contact approach for the detection of optically absorbing perturbations buried up to a few centimeters beneath the surface of a tissuelike turbid medium. The measured depth sensitivity and spatial resolution of the new system are close to the values predicted by Monte Carlo simulations for the inhomogeneous medium and an ideal fast-gated detector, thus proving the feasibility of the non-contact approach for high density diffuse reflectance measurements on tissue. Potential applications of the system are also discussed.File | Dimensione | Formato | |
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2012 OE - Mazurenka - Non contact - published.pdf
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