Patents by Inventor Raman Kashyap
Raman Kashyap has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Publication number: 20220107457Abstract: There is described a method of fabricating an optical fiber device, the method comprising: positioning longitudinal portions of a plurality of optical fibers alongside each other in a given geometrical relationship, depositing liquid coating material around the longitudinal portions of the plurality of optical fibers; and the liquid coating material setting up around the longitudinal portions of the plurality of optical fibers thereby maintaining said given geometrical relationship along the longitudinal portions.Type: ApplicationFiled: December 16, 2021Publication date: April 7, 2022Inventors: Raman KASHYAP, Sébastien LORANGER, Frédéric MONET, Samuel KADOURY, Pierre LORRE
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Patent number: 11249248Abstract: There is described a method of fabricating an optical fiber device, the method comprising: positioning longitudinal portions of a plurality of optical fibers alongside each other in a given geometrical relationship, depositing liquid coating material around the longitudinal portions of the plurality of optical fibers; and the liquid coating material setting up around the longitudinal portions of the plurality of optical fibers thereby maintaining said given geometrical relationship along the longitudinal portions.Type: GrantFiled: October 29, 2019Date of Patent: February 15, 2022Assignee: POLYVALOR, LIMITED PARTNERSHIPInventors: Raman Kashyap, Sébastien Loranger, Frédéric Monet, Samuel Kadoury, Pierre Lorre
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Publication number: 20200132926Abstract: There is described a method of fabricating an optical fiber device, the method comprising: positioning longitudinal portions of a plurality of optical fibers alongside each other in a given geometrical relationship, depositing liquid coating material around the longitudinal portions of the plurality of optical fibers; and the liquid coating material setting up around the longitudinal portions of the plurality of optical fibers thereby maintaining said given geometrical relationship along the longitudinal portions.Type: ApplicationFiled: October 29, 2019Publication date: April 30, 2020Inventors: Raman KASHYAP, Sébastien LORANGER, Frédéric MONET, Samuel KADOURY, Pierre LORRE
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Publication number: 20170276874Abstract: The method for inscribing a waveguide into a media glass substrate generally has the steps of: relatively moving a femtosecond laser beam along a surface of the media glass substrate while maintaining the focus of the laser beam at a depth of less than the surface, wherein the waveguide has a loss of less than 0.2 dB/cm when measured at a wavelength of light signal propagating in the waveguide during normal use of the waveguide. Particularly, the method can have varying writing parameters according to whether the waveguide is single-mode or multi-mode.Type: ApplicationFiled: June 9, 2017Publication date: September 28, 2017Inventors: Raman KASHYAP, Jerome LAPOINTE, Mathieu GAGNE
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Publication number: 20160306114Abstract: The method for inscribing a waveguide into a glass substrate generally has the steps of: relatively moving a femtosecond laser beam along a surface of the glass substrate while maintaining the focus of the laser beam at a given depth from the surface, wherein the glass substrate is a toughened glass. The optical device generally has: a glass substrate of toughened glass having a waveguide inscribed therein at a given depth from a surface of the glass.Type: ApplicationFiled: December 3, 2014Publication date: October 20, 2016Inventors: Raman Kashyap, Jerome Lapointe, Mathieu Gagne
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Publication number: 20150205044Abstract: This invention relates to the modifying or stripping of primary or secondary coatings on optical fibres by the application of heat such that the coating is entirely or partially removed from the surface over a given length of an optical fibre while a tension is applied in the fibre. Also a clamp to hold the optical fibre when tension is applied.Type: ApplicationFiled: January 13, 2015Publication date: July 23, 2015Inventor: Raman Kashyap
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Publication number: 20150043598Abstract: The method generally has the steps of propagating a seed wave in an optical fiber; generating a wave of first order by stimulated Brillouin scattering of the seed wave in the optical fiber, the wave of first order having a frequency spectrally shifted from the seed wave and being backscattered from the seed wave; propagating the seed wave and the wave of first order in a feedback cavity thereby generating a plurality of waves of higher order, each wave of higher order being cascadely generated by the wave of previous order, each wave of higher order being backscattered and having a frequency spectrally shifted from its corresponding wave of previous order and forming a frequency comb with the seed wave and the wave of first order; the frequency comb generating optical pulses; and propagating the generated optical pulses out of the feedback cavity.Type: ApplicationFiled: August 7, 2014Publication date: February 12, 2015Inventors: Raman Kashyap, Sebastien Loranger, Victor Lambin Iezzi
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Patent number: 8411353Abstract: There is provided an optical frequency converter comprising: an optical guiding structure having an input and an output, and comprising: a first grating portion adjacent to the input; a second grating portion adjacent to output, and a third grating between the first and second grating portion to form an apodized step-chirped grating extending between the input and the output. Each grating portion comprises a plurality of sections each comprising a plurality of segments. Each segment has a segment width and comprises a poled region having a poled width at least equal to one micron and a reversely poled region. The segment width for all of the grating portions and a duty ratio of the poled width to the segment width are constant within each section. The duty ratio increases within the first grating portion, decreases within the second grating portion, and is constant within the third grating portion.Type: GrantFiled: August 12, 2010Date of Patent: April 2, 2013Assignee: Polyvalor, Limited PartnerhsipInventors: Raman Kashyap, Amirhossein Tehranchi
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Publication number: 20120312028Abstract: Methods for cooling fluorescent material are provided. A first method includes providing a sample of the material having an elongated direction of light propagation, exhibiting fluorescence at a mean fluorescence wavelength and capable of emitting superradiant pulses with a formation delay time. The method then involves generating a pump pulsed laser beam having a wavelength longer than the mean fluorescence wavelength, a pump power at which superradiant pulses are emitted and a pulse duration shorter than the formation delay time. The pulses are directed onto the sample along the direction of light propagation to produce the superradiant pulses in an anti-Stokes process inducing a cooling of the sample. A second laser cooling method includes a combination of a traditional anti-Stokes cooling cycle and an upconversion cooling cycle, wherein the two cooling cycles act cooperatively to cool the sample.Type: ApplicationFiled: May 11, 2012Publication date: December 13, 2012Applicant: CORPORATION DE L'ECOLE POLYTECHNIQUE DE MONTREALInventors: Raman KASHYAP, Galina NEMOVA
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Publication number: 20120106893Abstract: There is described herein a method and system for inscribing gratings in optical waveguides. The waveguides may be hydrogen-free, germanium-free, low germanium, low hydrogen, and a combination thereof. Such gratings written in hydrogen-free fibers are suitable for sensor applications in which the use of hydrogen for photosensitizing fibers is undesirable owing to their increased sensitivity to nuclear radiation. The grating are formed by at least one pulse having a wavelength comprised between about 203 nm and about 240 nm. The laser source may be a Continuous Wave (CW) laser source or a pulsed laser source generating at least one pulse having a width in the order of nanoseconds (109).Type: ApplicationFiled: November 1, 2011Publication date: May 3, 2012Inventors: Raman KASHYAP, Mathieu GAGNE
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Publication number: 20110038034Abstract: There is provided an optical frequency converter comprising: an optical guiding structure having an input and an output, and comprising: a first grating portion adjacent to the input; a second grating portion adjacent to output, and a third grating between the first and second grating portion to form an apodized step-chirped grating extending between the input and the output. Each grating portion comprises a plurality of sections each comprising a plurality of segments. Each segment has a segment width and comprises a poled region having a poled width at least equal to one micron and a reversely poled region. The segment width for all of the grating portions and a duty ratio of the poled width to the segment width are constant within each section. The duty ratio increases within the first grating portion, decreases within the second grating portion, and is constant within the third grating portion.Type: ApplicationFiled: August 12, 2010Publication date: February 17, 2011Applicant: POLYVALOR S. E. C.Inventors: Raman KASHYAP, Amirhossein Tehranchi
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Patent number: 7697796Abstract: An optical waveguide sensing method and device in which a waveguide layer receives an optical signal and propagates the optical signal in accordance with a predetermined optical waveguide propagation mode. A testing medium surface in communication with the waveguide layer is responsive to a testing medium for modifying at least one characteristic of the propagated optical signal in relation to a given parameter of the testing medium. In this manner, the modified characteristic of the propagated optical signal can be measured in view of determining the given parameter of the testing medium.Type: GrantFiled: May 15, 2006Date of Patent: April 13, 2010Assignee: Corporation De L'Ecole Polytechnique De MontrealInventors: Raman Kashyap, Vincent Treanton, Lutfu Celebi Ozcan
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Publication number: 20100061689Abstract: The present invention is concerned with a process for fabricating a buried optical waveguide, comprising providing a multi-layer piece of material having a waveguide core layer, generating a laser beam and producing by ablation at least two trenches by applying the laser beam onto the multi-layer piece of material. The two trenches extend through the multi-layer piece of material including the core layer. Upon the ablation, melted material from the multi-layer piece is produced and the core layer is encapsulated between the two trenches with the melted material to produce the buried optical waveguide in the multi-layer piece of material.Type: ApplicationFiled: November 13, 2007Publication date: March 11, 2010Applicant: CORPORATION DE L'ÉCOLE POLYTECHNIQUE DE MONTRÉALInventors: Raman Kashyap, Vincent Treanton
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Publication number: 20090260501Abstract: There is described an optical fiber sensor for sensing one of vibration, temperature, and strain, comprising: a laser source; a first single mode optical fiber having a first end and a second end, the first end connected to the laser source for receiving and propagating light from the laser source; a multimode optical fiber having a first end and a second end, the first end connected to the second end of the first single mode optical fiber for receiving the light and thereby exciting a plurality of modes of the multimode optical fiber, the multimode optical fiber being stretched at an out of band frequency and operated at a point at which an output is a linear function of a displacement of the multimode fiber; and a sampling photo-detector module connected to the second end of the multimode optical fiber for spatially filtering an output of the multimode fiber to obtain a spatially filtered interference pattern, and for detecting a variation of the spatially filtered interference pattern when one of the vibraType: ApplicationFiled: April 20, 2009Publication date: October 22, 2009Inventor: Raman KASHYAP
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Publication number: 20090231682Abstract: Fiber light amplifiers adapted for high power application are provided. In embodiments of the invention, the light signal to be amplified is coupled to a cladding mode of an active waveguide region which is cladding doped. The amplified light is coupled to an output fiber have waveguiding properties matching those of the active cladding of the active waveguide region. In other embodiments, two or more amplifying stages are provided coupled by a wavelength selective loss element which couples the Stokes wave co-propagating with the signal to be amplified out of the signal guiding mode prior to the onset of SRS.Type: ApplicationFiled: January 19, 2009Publication date: September 17, 2009Applicant: CORPORATION DE L'ECOLE POLYTECHNIQUE DE MONTREALInventors: Raman Kashyap, Galina Nemova
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Publication number: 20080267555Abstract: An optical waveguide sensing method and device in which a waveguide layer receives an optical signal and propagates the optical signal in accordance with a predetermined optical waveguide propagation mode. A testing medium surface in communication with the waveguide layer is responsive to a testing medium for modifying at least one characteristic of the propagated optical signal in relation to a given parameter of the testing medium. In this manner, the modified characteristic of the propagated optical signal can be measured in view of determining the given parameter of the testing medium.Type: ApplicationFiled: May 15, 2006Publication date: October 30, 2008Inventors: Raman Kashyap, Vincent Treanton, Luftu Celebi Ozcan
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Publication number: 20080264910Abstract: A one step process for fabricating planar optical waveguides comprises using a laser to cut at least two channels in a substantially planar surface of a piece of dielectric material defining a waveguide there between. The shape and size of the resulting guide can be adjusting by selecting an appropriate combination of laser beam spatial profile, of its power and of the exposure time. A combination of heating and writing lasers can also be used to fabricate waveguides in a dielectric substrate, wherein the heating laser heats the substrate with a relatively broad focused spot, the power of the heating laser being controlled to raise the temperature heating the substrate just below the substrate's threshold temperature at which it begins to absorb electro-magnetic radiation, the writing laser, which yields a spot size smaller than the heating laser then melts the substrate within the focal spot of the heating laser.Type: ApplicationFiled: October 5, 2004Publication date: October 30, 2008Inventors: Raman Kashyap, Vincent Treanton
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Patent number: 7386021Abstract: In a first broad aspect, the invention provides a light source. The light source includes a semiconductor laser for emitting laser light at a first frequency. The light source also includes an optical fibre that includes a fibre Bragg grating. The fibre Bragg grating is optically coupled to the semiconductor laser for receiving the laser light, reflecting a reflected portion of the laser light towards the laser and allowing the transmitted portion of the laser light to pass through the fibre Bragg grating. The fibre Bragg grating has a temperature-dependant reflection spectrum. A frequency converting optical element is optically coupled to the fibre Bragg grating for receiving the transmitted portion of the laser light and converting at least a fraction of the transmitted portion of the laser light into a converted light having a second frequency different from the first frequency. An output port is optically coupled to the frequency converting optical element for outputting the converted light.Type: GrantFiled: May 22, 2006Date of Patent: June 10, 2008Inventor: Raman Kashyap
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Publication number: 20070284767Abstract: A method for treating an optical fiber according to a predetermined treatment, the optical fiber including a light guide and a coating, said coating covering, at least in part, said light guide, said method comprising: heating said coating along a portion thereof to a temperature such that said coating is treated according to said predetermined treatment; and transferring heat to said optical fiber at a rate small enough for substantially preventing said optical fiber from melting.Type: ApplicationFiled: April 20, 2007Publication date: December 13, 2007Inventor: Raman Kashyap
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Publication number: 20070064756Abstract: In a first broad aspect, the invention provides a light source. The light source includes a semiconductor laser for emitting laser light at a first frequency. The light source also includes an optical fibre that includes a fibre Bragg grating. The fibre Bragg grating is optically coupled to the semiconductor laser for receiving the laser light, reflecting a reflected portion of the laser light towards the laser and allowing the transmitted portion of the laser light to pass through the fibre Bragg grating. The fibre Bragg grating has a temperature-dependant reflection spectrum. A frequency converting optical element is optically coupled to the fibre Bragg grating for receiving the transmitted portion of the laser light and converting at least a fraction of the transmitted portion of the laser light into a converted light having a second frequency different from the first frequency. An output port is optically coupled to the frequency converting optical element for outputting the converted light.Type: ApplicationFiled: May 22, 2006Publication date: March 22, 2007Inventor: Raman Kashyap