Patents by Inventor Ravi Neelakantan
Ravi Neelakantan 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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Patent number: 12270569Abstract: Water removal from humidified air and other water-laden gases may be complicated due to the need for large and expensive capital equipment or use of powder-form desiccants that may lead to pressure drops, poor throughput and energy-intensive recovery of water. Reversible water-absorbing constructs may alleviate these difficulties and comprise: a phase change polymer exhibiting a reversible hydrophilic-hydrophobic phase transition, and at least one additional material in contact with the phase change polymer, such as a water-sorptive material. The phase change polymer and the at least one additional material are formed as a plurality of filaments. Filaments formed from the phase change polymer may be generated through an electrospinning process, which may be arranged in various higher level constructs, such as in fibers, fabrics and non-woven filament mats capable of absorbing water from humidified air or other water-laden gases.Type: GrantFiled: March 11, 2021Date of Patent: April 8, 2025Assignee: Palo Alto Research Center IncorporatedInventors: Kathryn F. Murphy, Ravi Neelakantan
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Patent number: 12222133Abstract: A system and method utilize one or more fans each having fan blades. The fan blades have a desiccant material on an outer surface. The desiccant material is operable to adsorb airborne moisture in an ambient airflow and desorb moisture in a heated airflow. The fan blades are operable to drive one or both of the ambient airflow and heated airflow via rotation of the fan.Type: GrantFiled: June 2, 2021Date of Patent: February 11, 2025Assignee: Xerox CorporationInventors: Ravi Neelakantan, Michael Benedict, Kathryn F. Murphy, Mahati Chintapalli, Stephen Meckler
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Patent number: 12092597Abstract: Sensors for detecting a formaldehyde-containing gas may include a first electrode and a second electrode; and an arylphosphine nanomaterial construct disposed between the first electrode and the second electrode, the arylphosphine nanomaterial construct including single-walled carbon nanotubes; and an arylphosphine including at least one aryl group. Methods for detecting formaldehyde include exposing a sensor to a formaldehyde-containing gas, the sensor including a first electrode and a second electrode; and an arylphosphine nanomaterial construct disposed between the first electrode and the second electrode, the arylphosphine nanomaterial construct including single-walled carbon nanotubes; and an arylphosphine containing at least one aryl group; monitoring a resistance between the first electrode and the second electrode; and determining a formaldehyde concentration from the resistance.Type: GrantFiled: December 3, 2021Date of Patent: September 17, 2024Assignee: Palo Alto Research Center IncorporatedInventors: Ravi Neelakantan, Rahul Pandey
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Publication number: 20240150511Abstract: A weak base anion resin has alkylamine segments covalently bound to cross-linking segments, the alkylamine segments being selected from a group consisting of: vinylamine, N-methylvinylamine, N,N-dimethylvinylamine, N-methyl-N-ethylvinylamine, and N,N-diethylvinylamine, and the weak base anion resin including ions adsorbed to the alkylamine segments. A method for ion exchange includes providing a weak base anion resin, contacting the weak base anion resin with a solution containing ions to one of capture or adsorb ions from solution to the weak base anion resin, and regenerating the weak base anion resin. A method to capture and release an acid gas includes providing a weak base anion resin, contacting the weak base anion resin with a gas including an acid gas to one of capture or adsorb the acid gas from the gas to the weak base anion resin, and regenerating the weak base anion resin to release the acid gas.Type: ApplicationFiled: November 2, 2023Publication date: May 9, 2024Inventors: JONATHAN BACHMAN, MAHATI CHINTAPALLI, GABRIEL IFTIME, IGNACIO LOPEZ PENA, FATEMEH OSTADHOSSEIN, ARAVINDH RAJAN, RAVI NEELAKANTAN
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Publication number: 20240101833Abstract: Disclosed herein in is a radiative cooling formulation including a solvent for providing a viscosity of a radiative cooling material for application onto a surface to be passively cooled. The radiative cooling formulation includes a binder for the radiative cooling material's integrity and bonding to the surface to be passively cooled. The radiative cooling formulation includes a polymer, which, in combination with the binder, provides one or more properties in the radiative cooling material, including a reflectance of or greater than 55% in a wavelengths range of 0.3 to 2.5 microns and a first thermal emissivity peak value greater than 0.85 at a first wavelength in a range of 8 to 13 microns (?m). For example, the polymer is a latex material including a styrene based copolymer.Type: ApplicationFiled: May 9, 2023Publication date: March 28, 2024Inventors: Sepehr TEHRANI, Quentin VAN OVERMEERE, Scott Alan ELROD, Scott E. SOLBERG, Gabriel IFTIME, Ravi NEELAKANTAN, Bernard D. CASSE
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Patent number: 11851543Abstract: A method of producing a polymer aerogel includes dissolving precursors into a solvent, wherein the precursors include monomers, crosslinkers, a controlling agent and an initiator to form a precursor solution, wherein at least one of the monomers or at least one of the crosslinkers has a refractive index of 1.5 or lower, polymerizing the precursor solution to form a gel polymer, and removing the solvent from the gel polymer to produce the polymer aerogel. A method of producing a polymer aerogel include dissolving precursors into a solvent, wherein the precursors include monomers, crosslinkers, a controlling agent and an initiator to form a precursor solution, polymerizing the precursor solution to form a gel polymer, removing the solvent from the gel polymer to produce the polymer aerogel, and reducing a refractive index of one of either the gel polymer or the polymer aerogel.Type: GrantFiled: April 30, 2021Date of Patent: December 26, 2023Assignee: XEROX CORPORATIONInventors: Eli Bulger, Mahati Chintapalli, Gabriel Iftime, Quentin Van Overmeere, Jessica Louis Baker Rivest, Ravi Neelakantan, Stephen Meckler
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Patent number: 11826695Abstract: A gas separation system has system input inlet configured to receive a stream mixture including a target gas, one or more spray generators positioned to spray a non-sprayable liquid to change a concentration of the target gas in the non-sprayable liquid, one or more system outlets positioned to outlet an output material, wherein at least one of the system outlets outputs a material having a lower amount of the target gas than the input stream mixture, and a recirculating path connected to the one or more outputs and the input inlet to allow recirculation of the non-sprayable liquid. A method of performing gas separation includes absorbing a target gas from an input stream in a non-sprayable capture liquid, and releasing the target gas in an output gas stream by spraying the non-sprayable capture liquid into a heated volume using a spray generator.Type: GrantFiled: October 25, 2021Date of Patent: November 28, 2023Assignee: XEROX CORPORATIONInventors: Mahati Chintapalli, Jerome Unidad, Kathryn F. Murphy, Ravi Neelakantan, Rahul Pandey, Stephen Matthew Meckler, David Mathew Johnson
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Publication number: 20230323040Abstract: A crosslinked, co-polymer hydrogel film has a continuous spatial gradient of functional co-monomers across a dimension of the film. A method of manufacturing a hydrogel film includes preparing a solution of a hydrogel-forming polymer, a functional ionic co-monomer, a polymerization initiator, an accelerator, and a solvent, transferring the solution to a mold and arranging the mold between two electrodes, applying a voltage to the electrodes to cause the ionic co-monomer to migrate towards an oppositely charged one of the two electrodes, and applying a polymerization energy to the solution to fix a position of the co-monomers within a resulting polymer matrix.Type: ApplicationFiled: April 11, 2022Publication date: October 12, 2023Inventors: ERIC PALERMO, RAVI NEELAKANTAN
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Patent number: 11732378Abstract: A system to electrohydrodynamically pattern a material includes a first electrode having a first voltage, a second electrode having a second voltage that is different from the first voltage, one or more materials to be patterned residing between the first electrode and the second electrode, a gap between at least one surface of at least one of the materials to be patterned and one of the first or second electrodes, at least one patterning material in the gap, wherein the patterning material is a material other than air, and at least one filling material filling any remainder of the gap.Type: GrantFiled: October 2, 2019Date of Patent: August 22, 2023Inventors: Michael Benedict, David Mathew Johnson, Elif Karatay, Eric Weflen, Ravi Neelakantan
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Publication number: 20230234083Abstract: An apparatus includes a first belt having an external surface, a second belt having an external surface positioned with the external surface opposite to the external surface of the first belt, with a region in which the first belt and the second belt come in contact, a first set of guide devices arranged inside the first belt, a second set of guide devices inside the second belt, a first material dispenser positioned to allow a first material to be dispensed on the external surface at least one of the first and second belts, a second material dispenser positioned to allow a second material to be dispensed on the external surface at least one of the first and second belts, and a power source to cause at least one of the guide devices in at least one of the first set and the second set of guide devices to cause at least one of the first and second belts to move to cause the external surfaces of the first and second belts contact and then diverge away from each other so that at least one of the first material anType: ApplicationFiled: January 27, 2022Publication date: July 27, 2023Inventors: RAVI NEELAKANTAN, JAMIE KALB, DAVID MATHEW JOHNSON, JOERG MARTINI
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Publication number: 20230181740Abstract: Mass vaccination of one or more animals may be performed topically using viscosified fluids. Suitable viscosified fluids may comprise a viscosifying construct and a medicament admixed with an aqueous carrier fluid. The viscosifying construct comprises a polymer associated with a plurality of particles through an ionic interaction, covalent bonding, hydrogen bonding, or any combination thereof. The viscosified fluid may exhibit shear-thinning behavior and become sprayable once sheared. When applied to one or more animals and shear is no longer being applied, the viscosity may increase and the viscosifying construct may adhere the medicament upon a topical surface of the one or more animals.Type: ApplicationFiled: December 15, 2021Publication date: June 15, 2023Applicant: Palo Alto Research Center IncorporatedInventors: Ravi NEELAKANTAN, Jerome UNIDAD
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Publication number: 20230175999Abstract: Sensors for detecting a formaldehyde-containing gas may include a first electrode and a second electrode; and an arylphosphine nanomaterial construct disposed between the first electrode and the second electrode, the arylphosphine nanomaterial construct including single-walled carbon nanotubes; and an arylphosphine including at least one aryl group. Methods for detecting formaldehyde include exposing a sensor to a formaldehyde-containing gas, the sensor including a first electrode and a second electrode; and an arylphosphine nanomaterial construct disposed between the first electrode and the second electrode, the arylphosphine nanomaterial construct including single-walled carbon nanotubes; and an arylphosphine containing at least one aryl group; monitoring a resistance between the first electrode and the second electrode; and determining a formaldehyde concentration from the resistance.Type: ApplicationFiled: December 3, 2021Publication date: June 8, 2023Applicant: Palo Alto Research Center IncorporatedInventors: Ravi NEELAKANTAN, Rahul PANDEY
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Patent number: 11667795Abstract: Disclosed herein in is a radiative cooling formulation including a first component with >55% reflectance in a wavelengths range of 0.3 to 2.5 microns, a second component with a first thermal emissivity peak value greater than 0.85 at a first wavelength in a range of 8 to 13 microns (?m), and a third component to mechanically bind together a mixture of the first component and second component.Type: GrantFiled: August 2, 2021Date of Patent: June 6, 2023Assignee: Palo Alto Research Center IncorporatedInventors: Quentin Van Overmeere, Scott Alan Elrod, Scott E. Solberg, Gabriel Iftime, Ravi Neelakantan, Bernard D. Casse
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Publication number: 20230130161Abstract: A gas separation system has system input inlet configured to receive a stream mixture including a target gas, one or more spray generators positioned to spray a non-sprayable liquid to change a concentration of the target gas in the non-sprayable liquid, one or more system outlets positioned to outlet an output material, wherein at least one of the system outlets outputs a material having a lower amount of the target gas than the input stream mixture, and a recirculating path connected to the one or more outputs and the input inlet to allow recirculation of the non-sprayable liquid. A method of performing gas separation includes absorbing a target gas from an input stream in a non-sprayable capture liquid, and releasing the target gas in an output gas stream by spraying the non-sprayable capture liquid into a heated volume using a spray generator.Type: ApplicationFiled: October 25, 2021Publication date: April 27, 2023Inventors: Mahati Chintapalli, Jerome Unidad, Kathryn F. Murphy, Ravi Neelakantan, Rahul Pandey, Stephen Matthew Meckler, David Mathew Johnson
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Publication number: 20230083459Abstract: A system has a first fluid dispenser containing a biocompatible polymer, a second fluid dispenser containing a biocompatible curing agent selected to form a highly viscous mixture with the biocompatible polymer, a pair of diverging surfaces having a contact point, the first fluid dispenser and the second fluid dispenser positioned to dispense a first fluid and a second fluid at the contact point, and an actuator connected to the first fluid dispenser, the second fluid dispenser and the pair of diverging surfaces, the actuator configured to cause the first fluid dispenser and the second fluid dispenser to dispense the fluids at the contact point, and to cause the diverging surfaces to move through the contact point and then diverge, causing the mixture to form filaments until the filaments break up to form a spray.Type: ApplicationFiled: September 14, 2021Publication date: March 16, 2023Inventors: Ravi Neelakantan, Alexander Rousina-Webb
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Publication number: 20220390127Abstract: A system and method utilize one or more fans each having fan blades. The fan blades have a desiccant material on an outer surface. The desiccant material is operable to adsorb airborne moisture in an ambient airflow and desorb moisture in a heated airflow. The fan blades are operable to drive one or both of the ambient airflow and heated airflow via rotation of the fan.Type: ApplicationFiled: June 2, 2021Publication date: December 8, 2022Inventors: Ravi Neelakantan, Michael Benedict, Kathryn F. Murphy, Mahati Chintapalli, Stephen Meckler
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Publication number: 20220290877Abstract: Water removal from humidified air and other water-laden gases may be complicated due to the need for large and expensive capital equipment or use of powder-form desiccants that may lead to pressure drops, poor throughput and energy-intensive recovery of water. Reversible water-absorbing constructs may alleviate these difficulties and comprise: a phase change polymer exhibiting a reversible hydrophilic-hydrophobic phase transition, and at least one additional material in contact with the phase change polymer, such as a water-sorptive material. The phase change polymer and the at least one additional material are formed as a plurality of filaments. Filaments formed from the phase change polymer may be generated through an electrospinning process, which may be arranged in various higher level constructs, such as in fibers, fabrics and non-woven filament mats capable of absorbing water from humidified air or other water-laden gases.Type: ApplicationFiled: March 11, 2021Publication date: September 15, 2022Applicant: Palo Alto Research Center IncorporatedInventors: Kathryn F. Murphy, Ravi Neelakantan
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Publication number: 20220143329Abstract: A docking station for a hand-held filament extension atomizer device includes a receiver to receive the device, station electronics, a recharging point for the device arranged to connect with a power source of the device, a power connection to an alternating current power source, and a cleaning reservoir of cleaning solution. A method of operating hand-held dispenser to dispense fluid as a mist includes receiving a signal at a motor contained in a casing in response to a user triggering an actuator on the casing, activating the motor to provide fluid to a filament extension atomizer contained in the case from a reservoir contained in the casing, the motor to cause the filament extension atomizer to generate a mist, and using an air source contained in the casing arranged adjacent the filament extension atomizer to provide air flow to direct the mist to a nozzle that is arranged to allow the mist to exit the casing.Type: ApplicationFiled: January 20, 2022Publication date: May 12, 2022Inventors: MICHAEL BENEDICT, DAVID MATHEW JOHNSON, SCOTT E. SOLBERG, JAMIE KALB, RAVI NEELAKANTAN, JEROME UNIDAD, DAVID CHARLES TAYLOR, FRANCES YAN
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Patent number: 11246997Abstract: A hand-held dispenser to dispense fluid includes a casing to fit into a hand of a user, a nozzle in the casing to dispense a mist, a fluid reservoir contained in the casing to hold a fluid to be turned into the mist, a filament extension atomizer contained in the casing to generate the mist, an air source contained in the casing to provide air flow to direct the mist to the nozzle, a motor contained in the casing to operate the filament extension atomizer, an actuator positioned on the casing to activate the dispenser, a control circuit contained in the casing to receive a signal from the actuator and to send a signal to the motor to cause the motor to actuate, and a power source contained in the casing to provide power to the motor upon receive a signal from the control circuit.Type: GrantFiled: September 25, 2018Date of Patent: February 15, 2022Assignee: Palo Alto Research Center IncorporatedInventors: Michael Benedict, David Mathew Johnson, Scott E. Solberg, Jamie Kalb, Ravi Neelakantan, Jerome Unidad, David Charles Taylor, Frances Yan
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Publication number: 20210363356Abstract: Disclosed herein in is a radiative cooling formulation including a first component with >55% reflectance in a wavelengths range of 0.3 to 2.5 microns, a second component with a first thermal emissivity peak value greater than 0.85 at a first wavelength in a range of 8 to 13 microns (?m), and a third component to mechanically bind together a mixture of the first component and second component.Type: ApplicationFiled: August 2, 2021Publication date: November 25, 2021Inventors: Quentin Van Overmeere, Scott Alan Elrod, Scott E. Solberg, Gabriel Iftime, Ravi Neelakantan, Bernard D. Casse