Casper Maheshwari advisors: Stephen Ulhorn & E. Duco Jansen Department of Biomedical Engineering Vanderbilt University

Slides:



Advertisements
Similar presentations
Ge 116 Module 1: Scanning Electron Microscopy
Advertisements

Thin Films, Diffraction, and Double slit interference
Measuring film thickness using Opti-Probe
Optical Coherence Tomography
Class-X Light, Reflection and Refraction.
VARISPOT FS BEHAVIOR IN COLLIMATED AND DIVERGING BEAMS: THEORY AND EXPERIMENTS Liviu Neagu, Laser Department, NILPRP, Bucharest-Magurele, Romania.
LEFT CLICK OR PRESS SPACE BAR TO ADVANCE, PRESS P BUTTON TO GO BACK, PRESS ESC BUTTON TO END LEFT CLICK OR PRESS SPACE BAR TO ADVANCE, PRESS P BUTTON.
Geometric Optics Chapter Thin Lenses; Ray Tracing Parallel rays are brought to a focus by a converging lens (one that is thicker in the center.
Hollow Waveguide UV Light Probe for Reduction of Ventilator Associated Pneumonia Team Members: Sarah Williams 1, Jeffrey Turner 1, Matthew Sundermann 1.
Multispectral Camera Simon Belkin, Audrey Finken, Grant George, Matthew Walczak Faculty Advisor: Prof. Mario Parente Department of Electrical and Computer.
26.6 Lenses. Converging Lens Focal length of a converging lens is real and considered positive.
Currently: 3 year ( ) NSF-supported UF/IAP collaborative project "Methods and Instruments for High-Precision Characterization of LIGO Optical Components"
Frequency Domain Optical Coherence Tomography (FDOCT) Joon S Kim IMSURE Summer Research Fellow At Beckman Laser Institute University of California at Irvine.
Optical Coherence Tomography Zhongping Chen, Ph.D. Optical imaging in turbid media Coherence and interferometry Optical coherence.
Geometric Optics Ray Model assume light travels in straight line
Find the Focal Length of the Lens A differentiated lab to test you skill with lab reports and geometric optics.
Convex Lens A convex lens curves outward; it has a thick center and thinner edges.
*Supported by the EU FP7-PEOPLE-2012-ITN project nr , INFIERI, "Intelligent Fast Interconnected and Efficient Devices for Frontier Exploitation in.
Effect of Spherical Aberration on MSE Filters December 5, 2005 Steve Scott & Jinseok Ko MIT PSFC Cambridge, MA Thanks to Fred Levinton, Nova Photonics.
بسم الله الرحمن الرحيم و قل رب زدنى علماً ﴿و قل رب زدنى علماً﴾ صدق الله العظيم.
KEYWORDS: refraction, angle of incidence, Angle of refraction, refractive index KEYWORDS: refraction, angle of incidence, Angle of refraction, refractive.
FIBER OPTIC RS-OCT PROBE Team Members: John Acevedo Kelly Thomas Chris Miller Advisors: Dr. Patil Dr. Mahadevan-Jansen.
Speckle Noise Reduction in Optical Coherence Tomography By: Marisse Foronda Rishi Matani Hardik Mehta Arthur Ortega.
Integrated Fluorescent Probe and Radiofrequency Ablator Rachel Riti and Alex Walsh Advisers: Bart Masters and Anita Mahadevan-Jansen Department of Biomedical.
Blake Ipson John Chen Matt Graeff Steven Benedict Weston Welge Team PhotoCon EXPO Lab Department of Electrical, Computer, and Energy Engineering University.
Optics 2: REFRACTION & LENSES. REFRACTION Refraction: is the bending of waves because of the change of speed of a wave when it passes from one medium.
One Specific Velocity Color Mapping of Flows with Complex Geometry Biomedical Engineering, Tambov State Technical University, Russia S.G.Proskurin, A.Yu.Potlov,
Unit 5, Chapter 15 Integrated Science. Unit Five: Light and Optics 15.1 Seeing an Image 15.2 The Human Eye 15.3 Optical Technology Chapter 15 Optics.
Optical Coherence Tomography and its Application to Tissue Engineering Garret Bonnema College of Optical Sciences Industrial Affiliates February 28, 2007.
How do I see color? Photochemical receptors receive the light (____ and _____) Rods-brightness cones-the color They release a ________ signal to the brain.
Summarized by: Name: AGNES Purwidyantri Student ID No: D
Grisms Michael Sholl Space Sciences Laboratory 29 March 2003 Practical implementation for SNAP.
3. Optical Coherence Tomography (OCT)
1/10 Tatsuya KUME Mechanical Engineering Center, High Energy Accelerator Research Organization (KEK) ATF2-IN2P3-KEK kick-off meeting (Oct. 10, 2006) Phase.
Chapter 18: Refraction and Lenses
Optimization of Phase Contrast Imaging Luke Powers Chris Weaver Jonathan Fermo Alfred Luk BME 273, Group 22 04/06/2005.
Sasha Bernard 5A Physics PowerPoint #2 Mr. Davis Sections of the syllabus.
Challenges and Opportunities Currently most pulsed THz systems are based on Ti-Sapphire laser systems with ZnTe crystals as THz emitters and detectors.
FIBER OPTIC RS-OCT PROBE John Acevedo Kelly Thomas Chris Miller Advisors: Dr. Patil Dr. Mahadevan-Jansen.
Tutorial on Computational Optical Imaging University of Minnesota September David J. Brady Duke University
Image Compression in Optical Coherence Tomography Biomedical Engineering, Tambov State Technical University, Russia K.E.S.Ghaleb, A.Yu.Potlov, S.N.Abdulkareem,
Mirrors and Lenses. Mirrors and Images Key Question: How does a lens or mirror form an image?
Copyright © by Holt, Rinehart and Winston. All rights reserved. ResourcesChapter menu Refraction Chapter 14 Table of Contents Section 1 Refraction Section.
4.4 Images in a Plane Mirror. Images in Plane Mirrors When you place an object in front of a mirror the light rays reflect off the object and some will.
Current 3D imaging systems for brain surgery are too slow to be effective in an operating room setting. All current effective methods for demarcation of.
Geometrical Optics 1 st year physics laboratories University of Ottawa Winter
1 REFRACTION OF LIGHT. 2 Chapter 18 Objectives: 1) Define refraction of light including examples. 2) Know which direction a light ray bends as it travels.
Date of download: 6/8/2016 Copyright © 2016 SPIE. All rights reserved. The portions of the datacube collected during a single detector integration period.
Karissa Thoma: Co-leader Tuan Tran: Co-leader Susie Samreth: BSAC Peter Kleinschmidt: Communicator Vidhya Raju: BWIG Prof. Walter Block (BME): Advisor.
Optical Instruments II Instruments for Imaging the Retina.
Date of download: 6/23/2016 Copyright © 2016 SPIE. All rights reserved. The single-fiber reflectance spectroscopy system consists of a tungsten-halogen.
Date of download: 6/28/2016 Copyright © 2016 SPIE. All rights reserved. Optical wire used for light-guided lumpectomy. The device consists of a 200-μm.
Student : Chen – Fung Tsen Advisor : Sheng – Lung Huang 1.
Date of download: 7/2/2016 Copyright © 2016 SPIE. All rights reserved. Simulation of the ablation cross section by a sequence of laser pulses with an ideal.
Local control sensors for iKAGRA payloads and perspective (Optical lever) Kazuhiro Agatsuma 2013/Dec./5 ELiTES meeting at Tokyo1.
Solid-state Laser Crystal and Device Laboratory Yen-Yin Li Speaker : Yen-Yin Li Adviser : Sheng-Lung Huang Topic Report Graduate Institute of Photonics.
Date of download: 9/18/2016 Copyright © 2016 SPIE. All rights reserved. Schematic of the simultaneous time- and wavelength resolved fluorescence spectroscopy.
Date of download: 9/19/2016 Copyright © 2016 SPIE. All rights reserved. Schematics of the 3-D printed probe for tissue collagen differentiation. (a) The.
UNIT-3 ADVANCES IN METROLOGY
Optical Non-Invasive Approaches to Diagnosis of Skin Diseases
Invest. Ophthalmol. Vis. Sci ;57(9):OCT568-OCT574. doi: /iovs
Notes 23.3: Lenses and Images
W. Ali, R. Corsini, E. Ciaramella SSSA Pisa Italy
Optical Non-Invasive Approaches to Diagnosis of Skin Diseases
Free-Response-Questions
Mont-Carlo simulation of OCT structural images of subcutaneous
LightGage™ Frequency Scanning Technology
Complex Nanophotonics
Microscopy.
OCT (Optical Coherence Tomography) Time domain Frequency domain Coherence length.
Presentation transcript:

Casper Maheshwari advisors: Stephen Ulhorn & E. Duco Jansen Department of Biomedical Engineering Vanderbilt University Design of an OCT Probe

Project Description zDesign, build, and implement a palm-size probe that can be used at the sample arm of an OCT imaging system. zThis probe will be used to differentiate between normal and tumor brain tissue.

What is OCT? zOptical Coherence Tomography is an imaging modality that produces 3-D images of biological microstructures. zThe heart of the OCT system consists of a Michaelson Interferometer. ySample Arm (lateral scanning) yReference Arm (longitudinal scanning) zThe laser travels through the sample and reflects off biological microstructures. y(depth scanning)

OCT Block Diagram LUMINESCENT DIODE sample 50/50 BANDPASS FILTER ENVELOPE DETECTOR A/D COMPUTER LATERAL SCANNING LONGITUDINAL SCANNING PROBE MODULE

ParametersParameters zDefined  Wavelength = 1.3  m yTotal Optical Path Distance = 49.0 cm yDepth of Focus between mm yLateral Scanning Distance = 5.0 mm zCalculated yCollimating Lens: f = 4.4 mm xBeam diameter = 1.15 mm yFocusing Lens: f = 40 mm xDepth of Focus = 4.0 mm yFiber Patch Cord Length = cm

Proposed Probe Design scanner Fiber l = 29 cm collimating lens f = 4.4 mm focusing lens f = 40 mm sample 5 mm 40 mm 1.15 mm diameter 

Completed Work z Library research of already existing probes z Arrival of the OCT system parts z Assembly of the OCT system z Basic probe design z Calculation of probe parameters z Order of probe components

Current Work z Awaiting Arrival of Probe components ycollimating and focusing lenses ypatch fiber cord  Ray Tracing on Optics Lab ®

Costs z Fiber Patch Cord$ z Collimating Lens$ z Focusing Lens$ z Total (to date)$

Future Work & Problems z Future Work yconstruct a probe prototype ydesign and make housing for the probe ytest out probe with basic experiments z Problems yThe desired scanner takes wks to arrive yAspheric collimating lens unavailable