Patents by Inventor John A. Rogers

John A. Rogers 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).

  • Publication number: 20200155047
    Abstract: Provided are microfluidic systems for monitoring a biofluid property and related methods. Specially configured microfluidic networks and associated structural support and functional elements, including flexible substrates, capping layers, and fluidic conduits and controllers, provide reliable biofluid collection. Optical components and indicators provide a reliable and readily observable readout, including of any of a number of biofluid properties, including directly from biofluid collected in the microfluidic network.
    Type: Application
    Filed: June 1, 2018
    Publication date: May 21, 2020
    Inventors: John A. ROGERS, Jungil CHOI, Tyler R. RAY, Johnathan T. REEDER, Yurina SEKINE, Amay J. BANDODKAR, Yi ZHANG, Hexia GUO, Sungbong KIM, Diana OSTOJICH
  • Publication number: 20200161291
    Abstract: Provided are optical devices and systems fabricated, at least in part, via printing-based assembly and integration of device components. In specific embodiments the present invention provides light emitting systems, light collecting systems, light sensing systems and photovoltaic systems comprising printable semiconductor elements, including large area, high performance macroelectronic devices. Optical systems of the present invention comprise semiconductor elements assembled, organized and/or integrated with other device components via printing techniques that exhibit performance characteristics and functionality comparable to single crystalline semiconductor based devices fabricated using conventional high temperature processing methods. Optical systems of the present invention have device geometries and configurations, such as form factors, component densities, and component positions, accessed by printing that provide a range of useful device functionalities.
    Type: Application
    Filed: October 29, 2019
    Publication date: May 21, 2020
    Inventors: John A. ROGERS, Ralph NUZZO, Matthew MEITL, Etienne MENARD, Alfred BACA, Michael MOTALA, Jong-Hyun AHN, Sang-Il PARK, Chang-Jae YU, Heung Cho KO, Mark STOYKOVICH, Jongseung YOON
  • Patent number: 10653342
    Abstract: The invention provides systems for handling biofluids including the transport, capture, collection, storage, sensing, and/or evaluation of biofluids released by tissue. Systems of some aspects provide a versatile platform for characterization of a broad range of physical and/or chemical biofluid attributes in real time and over clinically relevant timeframes. Systems of some aspects provide for collection and/or analysis of biofluids from conformal, watertight tissue interfaces over time intervals allowing for quantitative temporal and/or volumetric characterization of biofluid release, such as release rates and release volumes.
    Type: Grant
    Filed: June 16, 2017
    Date of Patent: May 19, 2020
    Assignees: The Board of Trustees of the University of Illinois, Northwestern University
    Inventors: John A. Rogers, Jungil Choi, Sungbong Kim
  • Publication number: 20200129077
    Abstract: Provided are apparatuses and methods for non-invasively measuring a blood pressure of a mammal subject. The apparatus includes a first sensor system and a second sensor system time-synchronized to each other and spatially separated by a pulse arrival distance L, and a microcontroller unit (MCU). The first and second sensor systems are respectively attached to first and second positions of the mammal subject for detecting first and second signals. The second position is more distal or proximal to a heart of the mammal subject than the first position. The MCU processes the output signals to determine a pulse arrival time (PAT) as a time delay ?t between detections of the first and second signals, and determines a pulse wave velocity (PWV) based on the PAT and L, where PWV = L ? ? ? t . Then the MCU determines the blood pressure P from the PWV, where P is a parabolic function of the PWV.
    Type: Application
    Filed: October 31, 2019
    Publication date: April 30, 2020
    Inventors: John A. Rogers, Shuai Xu, Yinji Ma, Jungil Choi, Aurelie Hourlier-Fargette, Yonggang Huang
  • Patent number: 10617300
    Abstract: Provided are implantable or surface mounted biomedical devices and related methods for interfacing with a target tissue. The devices have a substrate and device component supported by the substrate. The components of the device are specially configured and packaged to be ultra-thin and mechanically compliant. In particular, device thicknesses are less than 1 mm and have lateral dimensions between about 1 m and 10 mm, depending on the application. Delivery substrates may be incorporated to assist with device implantation and handling. The devices can be shaped to provide injection in a minimally invasive manner, thereby avoiding unnecessary tissue damage and providing a platform for long-term implantation for interfacing with biological tissue.
    Type: Grant
    Filed: February 11, 2014
    Date of Patent: April 14, 2020
    Assignees: The Board of Trustees of the University of Illinois, Washington University
    Inventors: John A. Rogers, Michael Raymond Bruchas, Robert Gereau, Jordan Gary McCall, Daniel Brenner, Tae-il Kim, Gunchul Shin, Jaewoong Jeong
  • Publication number: 20200093416
    Abstract: Provided herein are flexible, microfluidic epidermal systems and methods useful in the analysis of biofluids for biomarkers corresponding to a variety of conditions and methods of use. The provided systems configured to create conformal contact with the skin to allow for medical testing or screening, either in situ or later external laboratory testing. The described devices and methods may be used for cystic fibrosis screening, glucose monitoring, drug and/or alcohol testing, creatinine monitoring, urea monitoring, pH measurement and dialysis treatment efficacy testing.
    Type: Application
    Filed: June 1, 2018
    Publication date: March 26, 2020
    Inventors: John A. ROGERS, Tyler R. RAY, Jungil CHOI, Yi ZHANG
  • Publication number: 20200088739
    Abstract: Provided herein are epidermal microfluidic systems and methods that allow for the collection of biofluids in a wet or aquatic environment, for example, from the surface of the skin. The described systems allow for the efficient collection of biofluids, without loss of the biofluid to the surrounding environment or introduction of extraneous liquids from the environment. The described microfluidic systems are versatile and can provide information regarding a number of biofluid properties both electronically and colorimetrically/visually.
    Type: Application
    Filed: June 1, 2018
    Publication date: March 19, 2020
    Inventors: John A. ROGERS, Jungil CHOI, Johnathan T. REEDER
  • Patent number: 10577175
    Abstract: An International Organization for Standardization (ISO) shipping container 10 includes a cryogenic refrigeration system 14 for cryogenically cooling superconducting magnet(s) 12A, 12B during transit. The cryogenic refrigeration system 14 monitors the temperature and/or pressure of the superconducting magnet(s) and circulates a refrigerant to the superconducting magnet(s) to maintain cryogenic temperatures in superconducting coils. A power supply 16, provided by a transportation vehicle, connects to the cryogenic refrigeration system via a power inlet 20 which is accessible from the exterior of the shipping container. The superconducting magnet(s) are suspended within the shipping container which is then loaded onto the transportation vehicle. The external power supply is connected to the cryogenic refrigeration system such that refrigerant is circulated to a cold head 22A, 22B of each superconducting magnet.
    Type: Grant
    Filed: March 1, 2016
    Date of Patent: March 3, 2020
    Assignee: Koninklijke Philips N.V.
    Inventors: John Rogers, Eduardus Maria Bek
  • Patent number: 10549896
    Abstract: Packages made from flexible material, wherein the packages include one or more self-folds formed by applying activation energy to the flexible material.
    Type: Grant
    Filed: May 24, 2018
    Date of Patent: February 4, 2020
    Assignee: The Procter & Gamble Plaza
    Inventors: Hugh Joseph O'Donnell, Michael Remus, Neil John Rogers
  • Patent number: 10546841
    Abstract: Described herein are printable structures and methods for making, assembling and arranging electronic devices. A number of the methods described herein are useful for assembling electronic devices where one or more device components are embedded in a polymer which is patterned during the embedding process with trenches for electrical interconnects between device components. Some methods described herein are useful for assembling electronic devices by printing methods, such as by dry transfer contact printing methods. Also described herein are GaN light emitting diodes and methods for making and arranging GaN light emitting diodes, for example for display or lighting systems.
    Type: Grant
    Filed: March 27, 2017
    Date of Patent: January 28, 2020
    Assignee: The Board of Trustees of the University of Illinois
    Inventors: John A. Rogers, Ralph Nuzzo, Hoon-sik Kim, Eric Brueckner, Sang Il Park, Rak Hwan Kim
  • Patent number: 10544684
    Abstract: A turbine rotor blade that includes an interior cooling configuration having a section configuration that includes: a main channel divided into three non-overlapping segments in which an upstream segment connects to a downstream segment via a transition segment positioned therebetween; and one or more branching channels extending from the main channel via connections each makes to the transition segment. The transition segment includes a variable cross-sectional flow area that accommodates a main channel flow area reduction occurring between the upstream segment and the downstream segment. The one or more branching channels having a total branching channel flow area. The section configuration is configured according to a section channel ratio that is defined as the main channel flow area reduction divided by the total branching channel flow area, with the value of the section channel ratio being configured according a desired coolant flow characteristic.
    Type: Grant
    Filed: June 29, 2016
    Date of Patent: January 28, 2020
    Assignee: General Electric Company
    Inventors: John Rogers Mason, III, John Lesley DuBose
  • Publication number: 20200022601
    Abstract: Provided are methods of making a long-term implantable electronic device, and related implantable devices, including by providing a substrate having a first encapsulation layer that covers at least a portion of the substrate, the first encapsulation layer having a receiving surface; providing one or more electronic devices on the first encapsulation layer receiving surface; and removing at least a portion of the substrate from the first encapsulation layer; thereby making the long-term implantable electronic device. Further desirable properties, including device lifetime increases during use in environments that are challenging for sensitive electronic device components, are achieved through the use of additional layers such as longevity-extending layers and/or ion-barrier layers in combination with an encapsulation layer.
    Type: Application
    Filed: October 17, 2018
    Publication date: January 23, 2020
    Inventors: John A. ROGERS, Hui FANG, Jianing ZHAO, Enming SONG, Yoon Kyeung LEE
  • Patent number: 10538028
    Abstract: Origami- and Kirigami-inspired assembly of predetermined three-dimensional forms is presented in comprehensive theoretical and experimental studies, with examples of a broad range of topologies and material compositions. The resulting engineering options in the construction of functional 3D structures have important implications for advanced microsystem technologies.
    Type: Grant
    Filed: November 17, 2015
    Date of Patent: January 21, 2020
    Assignees: The Board of Trustees of the University of Illinois, Northwestern University
    Inventors: John A. Rogers, Sheng Xu, Zheng Yan, Yihui Zhang, Yonggang Huang
  • Publication number: 20200013720
    Abstract: The present invention provides stretchable, and optionally printable, semiconductors and electronic circuits capable of providing good performance when stretched, compressed, flexed or otherwise deformed. Stretchable semiconductors and electronic circuits of the present invention preferred for some applications are flexible, in addition to being stretchable, and thus are capable of significant elongation, flexing, bending or other deformation along one or more axes. Further, stretchable semiconductors and electronic circuits of the present invention may be adapted to a wide range of device configurations to provide fully flexible electronic and optoelectronic devices.
    Type: Application
    Filed: February 11, 2019
    Publication date: January 9, 2020
    Inventors: John A. ROGERS, Dahl-Young KHANG, Yugang SUN, Etienne MENARD
  • Publication number: 20200006540
    Abstract: The invention provides methods and devices for fabricating printable semiconductor elements and assembling printable semiconductor elements onto substrate surfaces. Methods, devices and device components of the present invention are capable of generating a wide range of flexible electronic and optoelectronic devices and arrays of devices on substrates comprising polymeric materials. The present invention also provides stretchable semiconductor structures and stretchable electronic devices capable of good performance in stretched configurations.
    Type: Application
    Filed: June 21, 2019
    Publication date: January 2, 2020
    Applicant: The Board of Trustees of the University of Illinois
    Inventors: Ralph G. NUZZO, John A. ROGERS, Etienne MENARD, Keon Jae LEE, Dahl-Young KHANG, Yugang SUN, Matthew MEITL, Zhengtao ZHU
  • Patent number: 10504882
    Abstract: Provided are optical devices and systems fabricated, at least in part, via printing-based assembly and integration of device components. In specific embodiments the present invention provides light emitting systems, light collecting systems, light sensing systems and photovoltaic systems comprising printable semiconductor elements, including large area, high performance macroelectronic devices. Optical systems of the present invention comprise semiconductor elements assembled, organized and/or integrated with other device components via printing techniques that exhibit performance characteristics and functionality comparable to single crystalline semiconductor based devices fabricated using conventional high temperature processing methods. Optical systems of the present invention have device geometries and configurations, such as form factors, component densities, and component positions, accessed by printing that provide a range of useful device functionalities.
    Type: Grant
    Filed: January 10, 2017
    Date of Patent: December 10, 2019
    Assignees: The Board of Trustees of the University of Illinois, X-Celeprint Limited
    Inventors: John Rogers, Ralph Nuzzo, Matthew Meitl, Etienne Menard, Alfred Baca, Michael Motala, Jong-Hyun Ahn, Sang-Il Park, Chang-Jae Yu, Heung Cho Ko, Mark Stoykovich, Jongseung Yoon
  • Publication number: 20190369728
    Abstract: Provided are actuation devices, virtual reality devices formed from the actuation devices, and related virtual reality methods. The devices may comprise a plurality of spatially distributed actuators, each actuator configured for interacting with a biological skin surface; a wireless controller configured to receive operative command signals to control each of the actuators; and a wireless power system to power the actuators. Also provided are unique layouts of multiple interconnected devices to achieve large area coverage.
    Type: Application
    Filed: January 26, 2018
    Publication date: December 5, 2019
    Inventors: John A. ROGERS, Shuai XU, In Hwa JUNG, Ha Uk CHUNG, Xinge YU, Yu YANG, Jungyup LEE, Rujie SUN
  • Patent number: 10497633
    Abstract: The present invention provides electronic systems, including device arrays, comprising functional device(s) and/or device component(s) at least partially enclosed via one or more fluid containment chambers, such that the device(s) and/or device component(s) are at least partially, and optionally entirely, immersed in a containment fluid. Useful containment fluids for use in fluid containment chambers of electronic devices of the invention include lubricants, electrolytes and/or electronically resistive fluids. In some embodiments, for example, electronic systems of the invention comprise one or more electronic devices and/or device components provided in free-standing and/or tethered configurations that decouple forces originating upon deformation, stretching or compression of a supporting substrate from the free standing or tethered device or device component.
    Type: Grant
    Filed: March 15, 2013
    Date of Patent: December 3, 2019
    Assignee: The Board of Trustees of the University of Illinois
    Inventors: John A. Rogers, Sheng Xu, Jonathan A. Fan, Lin Jia
  • Publication number: 20190325507
    Abstract: A system for processing a travel-related sequence of user interactions includes an operational intelligence engine configured to store the travel-related sequence of user interactions; a reconciliation engine configured to query the operational intelligence engine to determine a set of actions performed in conjunction with the sequence of user interactions; and an audit module configured to receive the set of actions from the reconciliation engine, verify the actions, and store the verified actions in an immutable distributed ledger.
    Type: Application
    Filed: June 27, 2019
    Publication date: October 24, 2019
    Inventors: John Roger Rowley, Marcia Gene Rowley, Teddy Floyd Davault, Kris Singleton
  • Patent number: 10441185
    Abstract: Provided herein are skin-mounted biomedical devices and methods of making and using biomedical devices for sensing and actuation applications. For example, flexible and/or stretchable biomedical devices are provided, including electronic devices useful for establishing conformal contact with the skin of a subject. Devices disclosed herein can comprise a plurality of sensing and/or actuating devices provided as part of a skin-mounted flexible or stretchable electronic circuit.
    Type: Grant
    Filed: June 8, 2012
    Date of Patent: October 15, 2019
    Assignee: The Board of Trustees of the University of Illinois
    Inventors: John A. Rogers, Dae-Hyeong Kim