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Michael A. Choma

Researcher at Yale University

Publications -  95
Citations -  7202

Michael A. Choma is an academic researcher from Yale University. The author has contributed to research in topics: Optical coherence tomography & Laser. The author has an hindex of 31, co-authored 94 publications receiving 6651 citations. Previous affiliations of Michael A. Choma include Duke University & Boston Children's Hospital.

Papers
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Sensitivity advantage of swept source and Fourier domain optical coherence tomography

TL;DR: Results are presented which demonstrate the superior sensitivity of swept source (SS) and Fourier domain (FD) optical coherence tomography (OCT) techniques over the conventional time domain (TD) approach.
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Speckle-free laser imaging using random laser illumination

TL;DR: Exploiting the low spatial coherence of specifically designed random lasers, researchers demonstrate speckle-free full-field imaging in the regime of intense optical scattering.
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Spectral Domain Phase Microscopy

TL;DR: In this article, a phase-sensitive technique called spectral-domain phase microscopy (SDPM) is proposed for the detection of nanometer-scale motions in living cells, and a shot-noise limit to the displacement sensitivity of this technique is derived.
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Instantaneous complex conjugate resolved spectral domain and swept-source OCT using 3x3 fiber couplers

TL;DR: It is reported that the complex conjugate artifact in Fourier domain optical coherence tomography approaches (including spectral domain and swept source OCT) may be resolved by the use of novel interferometer designs based on 3x3 and higher order fiber couplers.
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Instantaneous quadrature low coherence interferometry with 3 x 3 fiber optic couplers

TL;DR: An interferometer topology based on 3 x 3 fiber couplers that gives instantaneous access to the magnitude and phase of die interferometric signal is presented and its performance in heterodyne and homodyne detection with a broadband light source is demonstrated.