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Image Search Results


3D models of the imaging probes used in this study, including the (A) micromotor OCT catheter (B) tethered OCT capsule, and (C) widefield OCTA probe.

Journal: Biomedical Optics Express

Article Title: Multi-MHz MEMS-VCSEL swept-source optical coherence tomography for endoscopic structural and angiographic imaging with miniaturized brushless motor probes

doi: 10.1364/BOE.420394

Figure Lengend Snippet: 3D models of the imaging probes used in this study, including the (A) micromotor OCT catheter (B) tethered OCT capsule, and (C) widefield OCTA probe.

Article Snippet: A reflective microprism on a 2 mm diameter, brushless, sleeve bearing DC micromotor (DBL02-06H1, Namiki Precision) was used to circumferentially scan the OCT beam from a fiber GRIN focuser.

Techniques: Imaging

Imaging Probe Specifications

Journal: Biomedical Optics Express

Article Title: Multi-MHz MEMS-VCSEL swept-source optical coherence tomography for endoscopic structural and angiographic imaging with miniaturized brushless motor probes

doi: 10.1364/BOE.420394

Figure Lengend Snippet: Imaging Probe Specifications

Article Snippet: A reflective microprism on a 2 mm diameter, brushless, sleeve bearing DC micromotor (DBL02-06H1, Namiki Precision) was used to circumferentially scan the OCT beam from a fiber GRIN focuser.

Techniques: Imaging, Data-independent acquisition

Scan Protocol Parameters

Journal: Biomedical Optics Express

Article Title: Multi-MHz MEMS-VCSEL swept-source optical coherence tomography for endoscopic structural and angiographic imaging with miniaturized brushless motor probes

doi: 10.1364/BOE.420394

Figure Lengend Snippet: Scan Protocol Parameters

Article Snippet: A reflective microprism on a 2 mm diameter, brushless, sleeve bearing DC micromotor (DBL02-06H1, Namiki Precision) was used to circumferentially scan the OCT beam from a fiber GRIN focuser.

Techniques:

(A) Micromotor OCT catheter structural imaging of the esophagus, covering a 40 mm pullback distance. Pullback is performed rapidly to reduce physiological motion artifacts. Arrowheads denote a large vessel visible as a hypo-scattering contour in the (B) enlarged en face image. (C) Cross sectional image shows the layered appearance of esophageal mucosa and submucosa. Arrow points to a reflection from the catheter sheath. (D) High resolution micromotor OCT catheter structural imaging of swine rectum, covering a longitudinal pullback distance of 30 mm. (E) The enlarged en face region shows columnar epithelial crypts appearing as regular, ovular features. (F) The cross sectional image shows characteristic, highly-scattering vertical projection features from columnar epithelium, marked by arrowheads. Se: squamous epithelium, Lp: lamina propria, Mm: muscularis mucosa, Sm: submucosa.

Journal: Biomedical Optics Express

Article Title: Multi-MHz MEMS-VCSEL swept-source optical coherence tomography for endoscopic structural and angiographic imaging with miniaturized brushless motor probes

doi: 10.1364/BOE.420394

Figure Lengend Snippet: (A) Micromotor OCT catheter structural imaging of the esophagus, covering a 40 mm pullback distance. Pullback is performed rapidly to reduce physiological motion artifacts. Arrowheads denote a large vessel visible as a hypo-scattering contour in the (B) enlarged en face image. (C) Cross sectional image shows the layered appearance of esophageal mucosa and submucosa. Arrow points to a reflection from the catheter sheath. (D) High resolution micromotor OCT catheter structural imaging of swine rectum, covering a longitudinal pullback distance of 30 mm. (E) The enlarged en face region shows columnar epithelial crypts appearing as regular, ovular features. (F) The cross sectional image shows characteristic, highly-scattering vertical projection features from columnar epithelium, marked by arrowheads. Se: squamous epithelium, Lp: lamina propria, Mm: muscularis mucosa, Sm: submucosa.

Article Snippet: A reflective microprism on a 2 mm diameter, brushless, sleeve bearing DC micromotor (DBL02-06H1, Namiki Precision) was used to circumferentially scan the OCT beam from a fiber GRIN focuser.

Techniques: Imaging

(A) Micromotor probe OCT of the swine esophagus, covering a 14 mm longitudinal pullback distance. En face OCT image shows vessels (arrowheads) and esophageal mucosa with its characteristic smooth appearance. (B) Cross sectional image shows subsurface layered appearance of esophageal mucosa. (C-F) En face OCTA projections over 10 µm at four different depths (300 µm, 650 µm, 1 mm, and 1.35 mm below the surface) show depth resolved vasculature not visible in the structural en face image. (G-J) Enlarged en face OCTA images showing elaborate branching vasculature and appearance of larger vessels at deeper depths.

Journal: Biomedical Optics Express

Article Title: Multi-MHz MEMS-VCSEL swept-source optical coherence tomography for endoscopic structural and angiographic imaging with miniaturized brushless motor probes

doi: 10.1364/BOE.420394

Figure Lengend Snippet: (A) Micromotor probe OCT of the swine esophagus, covering a 14 mm longitudinal pullback distance. En face OCT image shows vessels (arrowheads) and esophageal mucosa with its characteristic smooth appearance. (B) Cross sectional image shows subsurface layered appearance of esophageal mucosa. (C-F) En face OCTA projections over 10 µm at four different depths (300 µm, 650 µm, 1 mm, and 1.35 mm below the surface) show depth resolved vasculature not visible in the structural en face image. (G-J) Enlarged en face OCTA images showing elaborate branching vasculature and appearance of larger vessels at deeper depths.

Article Snippet: A reflective microprism on a 2 mm diameter, brushless, sleeve bearing DC micromotor (DBL02-06H1, Namiki Precision) was used to circumferentially scan the OCT beam from a fiber GRIN focuser.

Techniques: