Patents by Inventor Daniel Jardine
Daniel Jardine 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: 20250271393Abstract: The present disclosure provides an innovative biosensor system utilizing three-dimensional vertical graphene structures for highly sensitive analyte detection in field-deployable applications. The vertical graphene structures may be formed in-situ directly on the sensor substrate, potentially enabling on-site fabrication and customization. These structures, with their increased surface area and unique tree-like morphology, may offer improved binding sites for bioreceptors compared to conventional flat graphene sensors. This biosensor design may address limitations of existing biosensors by combining enhanced surface area, controlled sample handling, and advanced measurement techniques in a single, field-portable device. The potential for in-situ graphene formation may allow for rapid sensor deployment and adaptation. Additionally, the system's portability may enable on-site analysis in remote locations, potentially reducing the need for sample transport and laboratory-based testing.Type: ApplicationFiled: May 9, 2025Publication date: August 28, 2025Inventors: Eric Danielson, Bradley Napier, Kevin Cheung, Daniel Jardine
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Publication number: 20250189474Abstract: Sensing devices for detecting analytes. The sensing devices may include a substrate, and a sensor element removably coupled to an I/O interface of the substrate. The sensor element may include one or more carbon-based sensors configured to detect the presence of one or more analytes. The sensor element may include a plurality of sensors arranged as a sensor array on the substrate. At least two of the sensors may include a first carbon-based sensing material disposed between a first pair of electrodes, and a second carbon-based sensing material disposed between a second pair of electrodes. The first carbon-based sensing material may be configured to detect a presence of each analyte of a group of analytes, and the second carbon-based sensing material may be configured to confirm the presence of each analyte of a subset of the group of analytes. The sensor element may be replaceable.Type: ApplicationFiled: December 5, 2024Publication date: June 12, 2025Applicant: Lyten, Inc.Inventors: Daniel Jardine, George Clayton Gibbs, Carlos Montalvo
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Publication number: 20250189490Abstract: A disclosed apparatus includes sensors incorporated into adhesive material. In use, an apparatus may comprise an adhesive material and at least macro-scale or meso-scale or micro-scale resonator disposed on or in the adhesive material. Additionally, the at least one macro-scale or meso-scale or micro-scale resonator is formed from a carbon-containing material, and the adhesive material is a non-elastomeric material or a semi-rigid material. In some aspects, each macro-scale or meso-scale or micro-scale resonator may resonate at a first frequency in response to an electromagnetic ping when the adhesive material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the adhesive material is in a second state. A resonant frequency of the adhesive material may be based on physical characteristics of the adhesive material.Type: ApplicationFiled: February 11, 2025Publication date: June 12, 2025Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Patent number: 12313570Abstract: A disclosed leaky coaxial resonant sensor system and methods. In use, the system includes at least one split-ring resonator (SRR) embedded within a material of the component. The at least one SRR is formed from a composite material. Additionally, the at least one SRR is configured to resonate at a first frequency in response to an interrogation signal from a leaky coaxial cable antenna. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the composite material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the composite material is in a second state. A resonant frequency of the composite material may be based on physical characteristics of the composite material.Type: GrantFiled: August 3, 2023Date of Patent: May 27, 2025Assignee: LYTEN, INC.Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Patent number: 12270785Abstract: A disclosed water droplet sensing system and methods using split-ring resonators, which may be embedded within a material. In use, a component includes at least one split-ring resonator (SRR) which may be embedded within a material of the component. The at least one SRR may be formed from a composite material. Additionally, the at least one SRR may be configured to form a signal that is correlated with a concentration of water proximate to the at least one SRR. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the material is in a second state. A resonant frequency of the material may be based on physical characteristics of the material (including fluid accumulation on the material).Type: GrantFiled: August 3, 2023Date of Patent: April 8, 2025Assignee: LYTEN, INC.Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Patent number: 12265058Abstract: A disclosed apparatus includes sensors incorporated into adhesive material. In use, an apparatus may comprise an adhesive material and at least one split-ring resonator (SRR) disposed on or in the adhesive material. Additionally, the at least one SRR is formed from a carbon-containing material, and the adhesive material is a non-elastomeric material or a semi-rigid material. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the adhesive material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the adhesive material is in a second state. A resonant frequency of the adhesive material may be based on physical characteristics of the adhesive material.Type: GrantFiled: August 3, 2023Date of Patent: April 1, 2025Assignee: LYTEN, INC.Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Publication number: 20240392852Abstract: A disclosed component may include at least one split-ring resonator, which may be embedded within a material. The split ring resonator may be formed from a three-dimensional (3D) monolithic carbonaceous growth and may detect an electromagnetic ping emitted from a user device. The split ring resonator may generate an electromagnetic return signal in response to the electromagnetic ping. The electromagnetic return signal may indicate a state of the material in a position proximate to a respective split ring resonator. In some aspects, the split-ring resonator may resonate at a first frequency in response to the electromagnetic ping when the material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the material is in a second state. A resonant frequency of the 3D monolithic carbonaceous growth may be based on physical characteristics of the material.Type: ApplicationFiled: August 1, 2024Publication date: November 28, 2024Inventors: Paul Biggins, Daniel Jardine, Maurizio Tarsia
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Publication number: 20230417685Abstract: A disclosed leaky coaxial resonant sensor system and methods. In use, the system includes at least one split-ring resonator (SRR) embedded within a material of the component. The at least one SRR is formed from a composite material. Additionally, the at least one SRR is configured to resonate at a first frequency in response to an interrogation signal from a leaky coaxial cable antenna. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the composite material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the composite material is in a second state. A resonant frequency of the composite material may be based on physical characteristics of the composite material.Type: ApplicationFiled: August 3, 2023Publication date: December 28, 2023Applicant: Lyten, Inc.Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Publication number: 20230384265Abstract: A disclosed apparatus includes sensors incorporated into adhesive material. In use, an apparatus may comprise an adhesive material and at least one split-ring resonator (SRR) disposed on or in the adhesive material. Additionally, the at least one SRR is formed from a carbon-containing material, and the adhesive material is a non-elastomeric material or a semi-rigid material. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the adhesive material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the adhesive material is in a second state. A resonant frequency of the adhesive material may be based on physical characteristics of the adhesive material.Type: ApplicationFiled: August 3, 2023Publication date: November 30, 2023Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo
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Publication number: 20230384264Abstract: A disclosed water droplet sensing system and methods using split-ring resonators, which may be embedded within a material. In use, a component includes at least one split-ring resonator (SRR) which may be embedded within a material of the component. The at least one SRR may be formed from a composite material. Additionally, the at least one SRR may be configured to form a signal that is correlated with a concentration of water proximate to the at least one SRR. In some aspects, each SRR may resonate at a first frequency in response to an electromagnetic ping when the material is in a first state, and may resonate at a second frequency in response to the electromagnetic ping when the material is in a second state. A resonant frequency of the material may be based on physical characteristics of the material (including fluid accumulation on the material).Type: ApplicationFiled: August 3, 2023Publication date: November 30, 2023Applicant: Lyten, Inc.Inventors: Daniel Jardine, Michael Stowell, Daniel Cook, Carlos Montalvo