Patents by Inventor Steven M. Ebstein

Steven M. Ebstein 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: 20230119921
    Abstract: An apparatus for performing diffuse optical imaging of blood circulation in a patient, said apparatus comprising: at least one sensor module comprising at least one optical source and at least one photodetector; an interface electronics module; and means for communicating at least one selected from the group consisting of control signals and measurement data between said sensor module and said interface electronics module; wherein said apparatus further comprises a membrane releasably secured to the skin of the patient, said membrane being configured to releasably secure said at least one sensor module to said membrane such that said at least one sensor module is disposed against the skin of the patient.
    Type: Application
    Filed: October 20, 2022
    Publication date: April 20, 2023
    Inventors: Zeev Bomzon, Steven M. Ebstein, EliyahuShalom Kolet, Ori Kadosh, Amit Barak, Hagai Barak, Arie Oscar Holtz, Edan Kenig
  • Publication number: 20230118120
    Abstract: An apparatus for performing diffuse optical imaging of a patient, said apparatus comprising: a computer; at least one sensor module comprising at least one optical source, at least one photodetector, and calibration data specific to said at least one sensor module; means for communicating between said computer and said at least one sensor module; means for automatically accessing said calibration data; and means for adjusting said apparatus in order to produce calibrated measurements.
    Type: Application
    Filed: October 20, 2022
    Publication date: April 20, 2023
    Inventors: Steven M. Ebstein, Jacques Aschkenasy, Ephraim Siegel, Zeev Bomzon, Ariel Rachminov
  • Publication number: 20220369941
    Abstract: A probe with a blood circulation sensor and a force or pressure sensor is placed against a patient. One part of the probe applies a force to another part of the probe which is pressed against the patient at one or more locations. The variation of a measure of blood circulation is recorded as a function of the applied pressure, thereby giving the operator a specific knowledge of the Tissue Perfusion Pressure (TPP), a measure of circulatory health, at each location.
    Type: Application
    Filed: April 1, 2022
    Publication date: November 24, 2022
    Inventors: Roberto Ferraresi, Steven M. Ebstein
  • Patent number: 11002688
    Abstract: An apparatus and method are disclosed for actinic inspection of semiconductor masks intended for extended ultraviolet (EUV) lithography, or similar objects, with feature sizes less than 100 nm. The approach uses a coherent light source with wavelength less than 120 nm. Inside a vacuum system, an optical system directs the light to an object, i.e., the mask or mask blank, and directs the resulting reflected or transmitted light to an imaging sensor. A computational system processes the imaging sensor data to generate phase and amplitude images of the object. The preferred imaging modality, a form of digital holography, produces images of buried structures and phase objects, as well as amplitude or reflectance images, with nanometer resolution less than or equal to the feature size of the mask.
    Type: Grant
    Filed: July 9, 2019
    Date of Patent: May 11, 2021
    Inventor: Steven M. Ebstein
  • Publication number: 20190331611
    Abstract: An apparatus and method are disclosed for actinic inspection of semiconductor masks intended for extended ultraviolet (EUV) lithography, or similar objects, with feature sizes less than 100 nm. The approach uses a coherent light source with wavelength less than 120 nm. Inside a vacuum system, an optical system directs the light to an object, i.e., the mask or mask blank, and directs the resulting reflected or transmitted light to an imaging sensor. A computational system processes the imaging sensor data to generate phase and amplitude images of the object. The preferred imaging modality, a form of digital holography, produces images of buried structures and phase objects, as well as amplitude or reflectance images, with nanometer resolution less than or equal to the feature size of the mask.
    Type: Application
    Filed: July 9, 2019
    Publication date: October 31, 2019
    Inventor: Steven M. Ebstein
  • Patent number: 10346964
    Abstract: An apparatus and method are disclosed for actinic inspection of semiconductor masks intended for extended ultraviolet (EUV) lithography, or similar objects, with feature sizes less than 100 nm. The approach uses a coherent light source with wavelength less than 120 nm. Inside a vacuum system, an optical system directs the light to an object, i.e., the mask or mask blank, and directs the resulting reflected or transmitted light to an imaging sensor. A computational system processes the imaging sensor data to generate phase and amplitude images of the object. The preferred imaging modality, a form of digital holography, produces images of buried structures and phase objects, as well as amplitude or reflectance images, with nanometer resolution less than or equal to the feature size of the mask.
    Type: Grant
    Filed: February 2, 2017
    Date of Patent: July 9, 2019
    Inventor: Steven M. Ebstein
  • Patent number: 9958402
    Abstract: An apparatus and method are provided for performing Quality Assurance of complex beams of penetrating radiation inside a patient. A detector with a transverse scintillating screen images the radiation inside a tissue phantom with high spatial resolution. The scintillator is comprised of a mixture of two or more scintillators emitting different spectra of light and having different characteristic responses as a function of the beam LET value. The optics relaying the scintillation output have variable transmission with wavelength, further shaping the spectrum of light transmitted to the imaging sensor which also has spectrally varying sensitivity. Parameters of the scintillator construction, the optics, and the imaging sensor are chosen so the output of the composite detector is proportional to a characteristic of the input beam, for example the dose deposited as a function of depth inside the tissue phantom.
    Type: Grant
    Filed: February 25, 2013
    Date of Patent: May 1, 2018
    Inventor: Steven M. Ebstein
  • Patent number: 9750958
    Abstract: An apparatus and method are provided for performing Quality Assurance of complex beams of penetrating radiation inside a patient. A detector with a transverse scintillating screen images the radiation inside a tissue phantom with high spatial resolution. The scintillator is comprised of a mixture of two or more scintillators emitting different spectra of light and having different characteristic responses as a function of the beam LET value. The optics relaying the scintillation output have variable transmission with wavelength, further shaping the spectrum of light transmitted to the imaging sensor which also has spectrally varying sensitivity. Parameters of the scintillator construction, the optics, and the imaging sensor are chosen so the output of the composite detector is proportional to a characteristic of the input beam, for example the dose deposited as a function of depth inside the tissue phantom.
    Type: Grant
    Filed: October 30, 2014
    Date of Patent: September 5, 2017
    Inventor: Steven M. Ebstein
  • Publication number: 20170221194
    Abstract: An apparatus and method are disclosed for actinic inspection of semiconductor masks intended for extended ultraviolet (EUV) lithography, or similar objects, with feature sizes less than 100 nm. The approach uses a coherent light source with wavelength less than 120 nm. Inside a vacuum system, an optical system directs the light to an object, i.e., the mask or mask blank, and directs the resulting reflected or transmitted light to an imaging sensor. A computational system processes the imaging sensor data to generate phase and amplitude images of the object. The preferred imaging modality, a form of digital holography, produces images of buried structures and phase objects, as well as amplitude or reflectance images, with nanometer resolution less than or equal to the feature size of the mask.
    Type: Application
    Filed: February 2, 2017
    Publication date: August 3, 2017
    Inventor: Steven M. Ebstein
  • Publication number: 20150071408
    Abstract: An apparatus and method are provided for performing Quality Assurance of complex beams of penetrating radiation inside a patient. A detector with a transverse scintillating screen images the radiation inside a tissue phantom with high spatial resolution. The scintillator is comprised of a mixture of two or more scintillators emitting different spectra of light and having different characteristic responses as a function of the beam LET value. The optics relaying the scintillation output have variable transmission with wavelength, further shaping the spectrum of light transmitted to the imaging sensor which also has spectrally varying sensitivity. Parameters of the scintillator construction, the optics, and the imaging sensor are chosen so the output of the composite detector is proportional to a characteristic of the input beam, for example the dose deposited as a function of depth inside the tissue phantom.
    Type: Application
    Filed: October 30, 2014
    Publication date: March 12, 2015
    Inventor: Steven M. Ebstein
  • Publication number: 20130287170
    Abstract: An apparatus and method are provided for performing Quality Assurance of complex beams of penetrating radiation inside a patient. A detector with a transverse scintillating screen images the radiation inside a tissue phantom with high spatial resolution. The scintillator is comprised of a mixture of two or more scintillators emitting different spectra of light and having different characteristic responses as a function of the beam LET value. The optics relaying the scintillation output have variable transmission with wavelength, further shaping the spectrum of light transmitted to the imaging sensor which also has spectrally varying sensitivity. Parameters of the scintillator construction, the optics, and the imaging sensor are chosen so the output of the composite detector is proportional to a characteristic of the input beam, for example the dose deposited as a function of depth inside the tissue phantom.
    Type: Application
    Filed: February 25, 2013
    Publication date: October 31, 2013
    Inventor: Steven M. Ebstein
  • Patent number: 8325339
    Abstract: A method for performing a diagnostic assay of an analyte, wherein the method comprises providing a base that has been structured using laser processing so as to provide a substrate with at least one patterned surface, wherein the laser processing comprises the selective application of pulsed laser energy to the base, whereby to melt a surface layer of the base which resolidifies, whereby to create the at least one patterned surface; applying a metal to the at least one patterned surface so as to provide at least one metalized patterned surface; positioning the analyte on the at least one metalized patterned surface; and performing a diagnostic assay of the analyte; wherein the metal comprises a metal film.
    Type: Grant
    Filed: June 28, 2011
    Date of Patent: December 4, 2012
    Inventor: Steven M. Ebstein
  • Patent number: 8184284
    Abstract: Apparatus for use in performing a diagnostic assay of an analyte, the apparatus comprising a base that has been structured using laser processing so as to provide at least one patterned surface by melting and resolidification of the base, wherein the patterned surface is characterized by structures ranging in scale from 10 to 2000 nanometers and further wherein the pattern is stochastic in all three spatial dimensions; and a metal applied to the at least one patterned surface so as to provide at least one metalized patterned surface.
    Type: Grant
    Filed: April 27, 2009
    Date of Patent: May 22, 2012
    Inventor: Steven M. Ebstein
  • Publication number: 20120092661
    Abstract: Surface enhanced Raman Scattering (SERS) and related modalities offer greatly enhanced sensitivity and selectivity for detection of molecular species through the excitation of plasmon modes and their coupling to molecular vibrational modes. One of the chief obstacles to widespread application is the availability of suitable nanostructured materials that exhibit strong enhancement of Raman scattering, are inexpensive to fabricate, and are reproducible. I describe nanostructured surfaces for SERS and other photonic sensing that use semiconductor and metal surfaces fabricated using femtosecond laser processing. A noble metal film (e.g., silver or gold) is evaporated onto the resulting nanostructured surfaces for use as a substrate for SERS. These surfaces are inexpensive to produce and can have their statistical properties precisely tailored by varying the laser processing. Surfaces can be readily micropatterned and both stochastic and self-organized structures can be fabricated.
    Type: Application
    Filed: June 28, 2011
    Publication date: April 19, 2012
    Inventor: Steven M. Ebstein
  • Publication number: 20110290008
    Abstract: Nanostructured sensing substrates (nanodevices) offer greatly enhanced sensitivity and selectivity for detection of molecular species through a variety of sensing modalities. In order to produce repeatable and quantifiable assays, it is desirable to apply the analyte uniformly to the nanodevice. Uniform analyte application is promoted by applying the analyte in a fluid mixture or solution which uniformly wets the nanostructured device. The fluid, or mixture of fluids, is chosen to both wet the nanodevice and dissolve or uniformly suspend the analyte.
    Type: Application
    Filed: May 31, 2011
    Publication date: December 1, 2011
    Inventors: Steven M. Ebstein, Howard Guthermann
  • Patent number: 7969570
    Abstract: A method for performing a diagnostic assay of an analyte, wherein the method comprises providing a base that has been structured using laser processing so as to provide a substrate with at least one patterned surface, wherein the laser processing comprises the selective application of pulsed laser energy to the base, whereby to melt a surface layer of the base which resolidifies, whereby to create the at least one patterned surface; applying a metal to the at least one patterned surface so as to provide at least one metalized patterned surface; positioning the analyte on the at least one metalized patterned surface; and performing a diagnostic assay of the analyte.
    Type: Grant
    Filed: September 8, 2009
    Date of Patent: June 28, 2011
    Inventor: Steven M. Ebstein
  • Publication number: 20100165336
    Abstract: Surface enhanced Raman Scattering (SERS) and related modalities offer greatly enhanced sensitivity and selectivity for detection of molecular species through the excitation of plasmon modes and their coupling to molecular vibrational modes. One of the chief obstacles to widespread application is the availability of suitable nanostructured materials that exhibit strong enhancement of Raman scattering, are inexpensive to fabricate, and are reproducible. I describe nanostructured surfaces for SERS and other photonic sensing that use semiconductor and metal surfaces fabricated using femtosecond laser processing. A noble metal film (e.g., silver or gold) is evaporated onto the resulting nanostructured surfaces for use as a substrate for SERS. These surfaces are inexpensive to produce and can have their statistical properties precisely tailored by varying the laser processing. Surfaces can be readily micropatterned and both stochastic and self-organized structures can be fabricated.
    Type: Application
    Filed: September 8, 2009
    Publication date: July 1, 2010
    Inventor: Steven M. Ebstein
  • Publication number: 20090279085
    Abstract: Surface enhanced Raman Scattering (SERS) and related modalities offer greatly enhanced sensitivity and selectivity for detection of molecular species through the excitation of plasmon modes and their coupling to molecular vibrational modes. One of the chief obstacles to widespread application is the availability of suitable nanostructured materials that exhibit strong enhancement of Raman scattering, are inexpensive to fabricate, and are reproducible. I describe nanostructured surfaces for SERS and other photonic sensing that use semiconductor and metal surfaces fabricated using femtosecond laser processing. A noble metal film (e.g., silver or gold) is evaporated onto the resulting nanostructured surfaces for use as a substrate for SERS. These surfaces are inexpensive to produce and can have their statistical properties precisely tailored by varying the laser processing. Surfaces can be readily micropatterned and both stochastic and self-organized structures can be fabricated.
    Type: Application
    Filed: April 27, 2009
    Publication date: November 12, 2009
    Inventor: Steven M. Ebstein
  • Patent number: 7586601
    Abstract: Surface enhanced Raman Scattering (SERS) and related modalities offer greatly enhanced sensitivity and selectivity for detection of molecular species through the excitation of plasmon modes and their coupling to molecular vibrational modes. One of the chief obstacles to widespread application is the availability of suitable nanostructured materials that exhibit strong enhancement of Raman scattering, are inexpensive to fabricate, and are reproducible. I describe nanostructured surfaces for SERS and other photonic sensing that use semiconductor and metal surfaces fabricated using femtosecond laser processing. A noble metal film (e.g., silver or gold) is evaporated onto the resulting nanostructured surfaces for use as a substrate for SERS. These surfaces are inexpensive to produce and can have their statistical properties precisely tailored by varying the laser processing. Surfaces can be readily micropatterned and both stochastic and self-organized structures can be fabricated.
    Type: Grant
    Filed: June 14, 2006
    Date of Patent: September 8, 2009
    Inventor: Steven M. Ebstein
  • Patent number: 7515681
    Abstract: A method and apparatus for monitoring a scanning beam of penetrating radiation, such as a scanning proton beam used to irradiate tissue. The position of the beam is tracked in real time by interposing a scintillator film between a source and an object of irradiation. An imaging detector, in optical communication with the scintillator, provides an output that is indicative of the position of the radiation and its variation with time. The accumulated dose over a scan may also be monitored.
    Type: Grant
    Filed: June 30, 2005
    Date of Patent: April 7, 2009
    Assignee: Lexitek, Inc.
    Inventor: Steven M. Ebstein