Patents Assigned to VisualSonics Inc.
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Patent number: 10391185Abstract: The invention provides a multimodal ultrasound and photoacoustic contrast agent based on polymeric microparticles having a gas core and carrying at least one photoacoustic agent in its shell that stabilizes the gas core, for use in ultrasound and photoacoustic imaging. Such multimodal ultrasound and photoacoustic contrast agent is also suitable as a carrier of drugs and for use in photodynamic therapy, and for tissue imaging ex vivo.Type: GrantFiled: November 26, 2015Date of Patent: August 27, 2019Assignees: Fujifilm VisualSonics, Inc., RWTH AachenInventors: Fabian Kiessling, Twan Lammers, Stanley Fokong Nyongamsen, Katrin Suppelt
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Publication number: 20140354113Abstract: A transducer with triangular cross-sectional shaped pillars is described for suppressing lateral modes within a composite, and a method for producing the same. According to one aspect of the present application, a plurality of triangular cross-sectional shaped pillars extends outwardly from a substrate and form an array of pillars. The resulting array of pillars is configured to suppress the lateral modes of the transducer at higher operating frequencies, such as, at or above 15 MHz, at or above 20 MHz, or at or above 30 MHz.Type: ApplicationFiled: March 10, 2014Publication date: December 4, 2014Applicant: FUJIFILM VISUALSONICS, INC.Inventors: Jeremy Brown, F. Stuart Foster, Jianhua Yin
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Patent number: 8823246Abstract: A transducer with triangular cross-sectional shaped pillars is described for suppressing lateral modes within a composite, and a method for producing the same. According to one aspect of the present application, a plurality of triangular cross-sectional shaped pillars extends outwardly from a substrate and form an array of pillars. The resulting array of pillars is configured to suppress the lateral modes of the transducer at higher operating frequencies, such as, at or above 15 MHz, at or above 20 MHz, or at or above 30 MHz.Type: GrantFiled: November 13, 2012Date of Patent: September 2, 2014Assignee: FUJIFILM VisualSonics, Inc.Inventors: Jeremy Brown, F. Stuart Foster, Jianhua Yin
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Publication number: 20140128738Abstract: Systems and methods for producing three-dimensional ultrasound images are disclosed herein. In one embodiment, ultrasound image data are acquired in discrete time increments at one or more positions relative to a subject. The image data is time stamped relative to an offset to a reference point. The image data is synchronized relative to the reference point and combined to form a loop of three dimensional images.Type: ApplicationFiled: November 5, 2013Publication date: May 8, 2014Applicant: FUJIFILM VISUALSONICS, INC.Inventors: Christopher A. White, James Mehi, Stanley Poon
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Patent number: 8708909Abstract: Provided herein are compositions comprising a microbubble contrast agent, wherein at least 20% by volume of the microbubbles in the contrast agent has a size of less than 1 micron, wherein the contrast agent produces non-linear scattering when contacted by ultrasound at a frequency above 20 MHz. Provided herein are compositions comprising a microbubble contrast agent, wherein at least 10% by volume of the microbubbles in the contrast agent has a size of less than 500 nanometers, wherein the contrast agent produces non-linear scattering when contacted by ultrasound at a frequency above 20 MHz. Provided herein are compositions comprising a microbubble contrast agent, wherein at least 5% by volume of the microbubbles in the contrast agent has a size of less than 200 nanometers, wherein the contrast agent produces non-linear scattering when contacted by ultrasound at a frequency above 20 MHz. The disclosed contrast agents can be targeted contrast agents.Type: GrantFiled: January 20, 2005Date of Patent: April 29, 2014Assignee: FUJIFILM VisualSonics, Inc.Inventors: David E. Goertz, F. Stuart Foster
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Publication number: 20140073929Abstract: A system for producing an ultrasound image comprises a scan head having a transducer capable of generating ultrasound energy at a frequency of at least 20 megahertz (MHz), and a processor for receiving ultrasound energy and for generating an ultrasound image at a frame rate of at least 15 frames per second (fps).Type: ApplicationFiled: November 15, 2013Publication date: March 13, 2014Applicant: FUJIFILM VISUALSONICS, INC.Inventors: James Mehi, Nicholas Christopher Chaggares, F. Stuart Foster, Robert McConaghy
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Publication number: 20140018678Abstract: Provided are methods and systems for detecting a maturing arterio-venous fistula comprising a vein. An exemplary method comprises determining a wall thickness of the fistula and a lumen diameter of the fistula vein using a high frequency ultrasound imaging system. A blood pressure of the subject is determined. A circumferential vessel wall stress is determined from the measured blood pressure, the wall thickness of the fistula and a determined radius of the measured diameter of the fistula. The determined circumferential vessel stress is compared to a predetermined threshold stress to determine if the fistula is mature.Type: ApplicationFiled: September 10, 2013Publication date: January 16, 2014Applicant: FUJIFILM VISUALSONICS, INC.Inventors: Sandra Donnelly, Derek Muradali
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Patent number: 8343289Abstract: In one aspect, matching layers for an ultrasonic transducer stack having a matching layer comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In another aspect, the matrix material is loaded with a plurality of heavy and light particles. In another aspect, an ultrasound transducer stack comprises a piezoelectric layer and at least one matching layer. In one aspect, the matching layer comprises a composite material comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In a further aspect, the composite material can also comprise a matrix material loaded with a plurality of heavy and light particles. In a further aspect, a matching layer can also comprise cyanoacrylate.Type: GrantFiled: July 6, 2010Date of Patent: January 1, 2013Assignee: VisualSonics Inc.Inventors: N. Chris Chaggares, James Mehi, Desmond Hirson
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Patent number: 8316518Abstract: Methods for the manufacture of electrical components, such as ultrasound transducers, are illustrated and described. In particular, several embodiments of the methods can include patterning electrodes, such as for the connection of an ultrasound transducer to an electrical circuit. The methods also can include depositing metal on surfaces and making an integrated matching layer for an ultrasound transducer. Ultrasound transducers produced by these methods also are illustrated and described.Type: GrantFiled: September 18, 2009Date of Patent: November 27, 2012Assignee: VisualSonics Inc.Inventors: Marc Lukacs, Chris Chaggares, Desmond Hirson, Guofeng Pang
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Patent number: 8317714Abstract: An ultrasonic imaging system comprises a processing system and an ultrasound imaging probe that is configured to transmit ultrasound energy into a selected portion of a subject and to receive echoes therefrom and to transmit data signals representative thereof to the processing system. The system further comprises a blood pressure sensor that is configured to measure the blood pressure of the subject and to transmit data signals representative thereof to the processing system. The processing system can processes the received ultrasound data signals to generate an ultrasound image and the received blood pressure data signals to generate a blood pressure trace. The processing system can also display the ultrasound image and blood pressure trace in a display image in which portions of the ultrasound image are displayed in temporal synchrony with portions of the blood pressure trace.Type: GrantFiled: August 18, 2006Date of Patent: November 27, 2012Assignee: VisualSonics Inc.Inventors: Randall Albert Hendriks, Desmond Hirson, Christopher Scott Rabuka
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Patent number: 8310133Abstract: A transducer with triangular cross-sectional shaped pillars is described for suppressing lateral modes within a composite, and a method for producing the same. According to one aspect of the present application, a plurality of triangular cross-sectional shaped pillars extends outwardly from a substrate and form an array of pillars. The resulting array of pillars is configured to suppress the lateral modes of the transducer at higher operating frequencies, such as, at or above 15 MHz, at or above 20 MHz, or at or above 30 MHz.Type: GrantFiled: December 8, 2010Date of Patent: November 13, 2012Assignee: VisualSonics Inc.Inventors: Jeremy Brown, F. Stuart Foster, Jianhua Yin
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Patent number: 8275449Abstract: A method of creating an image difference overlay comprises identifying a loop of reference images of a subject and identifying a loop of data images of the subject. The loop of image data can be identified after an event, such as the administration of contrast agent to the subject. A reference loop image frame is compared to one or more data loop image frames and the reference loop frame is associated with a data loop image frame which closely resembles the data loop image frame. Each of the associated frames can then be processed and used to create an image difference overlay frame.Type: GrantFiled: November 10, 2006Date of Patent: September 25, 2012Assignee: VisualSonics Inc.Inventors: Christopher A. White, Desmond Hirson, Stanley Poon, James Mehi
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Patent number: 8078256Abstract: The imaging system can comprise a plurality of elongated rails, a scanhead assembly, and a small animal mount assembly. The scanhead assembly is selectively mounted onto a first rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the first rail. The small-animal mount assembly is selectively mounted onto a second rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the second rail. The second rail being mounted relative to the first rail such that the longitudinal axis of the second rail is at an angle to the longitudinal axis of the first rail. The imaging system can also comprise a needle injection assembly that is selectively mounted onto the third rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the third rail.Type: GrantFiled: February 7, 2005Date of Patent: December 13, 2011Assignee: VisualSonics Inc.Inventor: Leo Zan
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Publication number: 20110057545Abstract: In one aspect, matching layers for an ultrasonic transducer stack having a matching layer comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In another aspect, the matrix material is loaded with a plurality of heavy and light particles. In another aspect, an ultrasound transducer stack comprises a piezoelectric layer and at least one matching layer. In one aspect, the matching layer comprises a composite material comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In a further aspect, the composite material can also comprise a matrix material loaded with a plurality of heavy and light particles. In a further aspect, a matching layer can also comprise cyanoacrylate.Type: ApplicationFiled: July 6, 2010Publication date: March 10, 2011Applicant: VisualSonics Inc.Inventors: N. Chris Chaggares, James Mehi, Desmond Hirson
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Patent number: 7901358Abstract: A system for acquiring an ultrasound signal comprises a signal processing unit adapted for acquiring a received ultrasound signal from an ultrasound transducer having a plurality of elements. The system is adapted to receive ultrasound signals having a frequency of at least 20 megahertz (MHz) with a transducer having a field of view of at least 5.0 millimeters (mm) at a frame rate of at least 20 frames per second (fps). The signal processing can further produce an ultrasound image from the acquired ultrasound signal. The transducer can be a linear array transducer, a phased array transducer, a two-dimensional (2-D) array transducer, or a curved array transducer.Type: GrantFiled: November 2, 2006Date of Patent: March 8, 2011Assignees: VisualSonics Inc., Sunnybrook Health Science CentreInventors: James Mehi, Ronald E. Daigle, Laurence C. Brasfield, Brian Starkoski, Jerrold Wen, Kai Wen Liu, Lauren S. Pflugrath, F. Stuart Foster, Desmond Hirson
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Publication number: 20110054321Abstract: A method for producing an ultrasound image comprises monitoring the subject's respiration cycle or waveform, acquiring ultrasound data from the subject, producing an ultrasound image from the received ultrasound data received during the time when the subject's motion due to breathing had substantially stopped.Type: ApplicationFiled: August 23, 2010Publication date: March 3, 2011Applicant: VisualSonics Inc.Inventors: Chris A. White, James I. Mehi, Desmond Hirson
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Publication number: 20110054292Abstract: Photoacoustic imaging systems and methods that allow for the creation of three-dimensional (3D) images of a subject are described herein. The systems include one or more optical fibers attached to an ultrasound transducer. Ultrasonic waves are generated by laser light emitted from the optical fiber(s) and detected by the ultrasound transducer. 3D images are acquired by ultrasound signals from a series of adjacent scan planes or frames that are then stacked together to create 3D volume data.Type: ApplicationFiled: April 30, 2010Publication date: March 3, 2011Applicant: VisualSonics Inc.Inventors: Desmond Hirson, James I. Mehi, Andrew Needles
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Publication number: 20100298709Abstract: This invention employs multiple ultrasound pulse firings of either alternating phase and/or amplitude to detect nonlinear fundamental and subharmonic signals from microbubble contrast agents within living tissue, at high frequencies (?15 MHz), e.g., with a linear array transducer. It can be shown that the contrast-to-tissue ratio (CTR) decreases with increasing ultrasound frequency because of nonlinear ultrasound propagation in tissue. However, using the subharmonic signal in addition to the nonlinear fundamental harmonic component, rather than the conventional second harmonic used at lower frequencies, provides appreciable signal strength to overcome the limitations of nonlinear tissue propagation. Additionally, the method provides for the ability to switch, at some desired frequency above 20 MHz, into a purely alternating phase inversion acquisition, in combination with bandpass filtering of the subharmonic frequency band, minimizing the losses in CTR as the frequency increases.Type: ApplicationFiled: April 19, 2010Publication date: November 25, 2010Applicant: VisualSonics Inc.Inventors: Andrew Needles, James I. Mehi, Desmond Hirson
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Patent number: 7808156Abstract: In one aspect, matching layers for an ultrasonic transducer stack having a matching layer comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In another aspect, the matrix material is loaded with a plurality of heavy and light particles. In another aspect, an ultrasound transducer stack comprises a piezoelectric layer and at least one matching layer. In one aspect, the matching layer comprises a composite material comprising a matrix material loaded with a plurality of micron-sized and nano-sized particles. In a further aspect, the composite material can also comprise a matrix material loaded with a plurality of heavy and light particles. In a further aspect, a matching layer can also comprise cyanoacrylate.Type: GrantFiled: March 2, 2006Date of Patent: October 5, 2010Assignee: VisualSonics Inc.Inventors: N. Chris Chaggares, James Mehi, Desmond Hirson
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Patent number: 7798963Abstract: A method for producing an ultrasound image comprises monitoring the subject's respiration cycle or waveform, acquiring ultrasound data from the subject, producing an ultrasound image from the received ultrasound data received during the time when the subject's motion due to breathing had substantially stopped.Type: GrantFiled: March 3, 2006Date of Patent: September 21, 2010Assignee: VisualSonics Inc.Inventors: Chris A. White, James I. Mehi, Desmond Hirson