Patents by Inventor Erik Norberg
Erik Norberg 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: 10128634Abstract: Described are various configurations of integrated wavelength lockers including asymmetric Mach-Zehnder interferometers (AMZIs) and associated detectors. Various embodiments provide improved wavelength-locking accuracy by using an active tuning element in the AMZI to achieve an operational position with high locking sensitivity, a coherent receiver to reduce the frequency-dependence of the locking sensitivity, and/or a temperature sensor and/or strain gauge to computationally correct for the effect of temperature or strain changes.Type: GrantFiled: August 29, 2017Date of Patent: November 13, 2018Assignee: Juniper Networks, Inc.Inventors: John Parker, Jared Bauters, Jonathan Edgar Roth, Erik Norberg, Gregory Alan Fish
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Patent number: 10090641Abstract: Described herein are methods, systems, and apparatuses to utilize a semiconductor optical amplifier (SOA) comprising a silicon layer including a silicon waveguide, a non-silicon layer disposed on the silicon layer and including a non-silicon waveguide, first and second mode transition region comprising tapers in the silicon waveguide and/or the non-silicon waveguide for exchanging light between the waveguide, and a plurality of regions disposed between the first and second mode transition regions comprising different cross-sectional areas of the silicon waveguide and the non-silicon waveguide such that confinement factors for the non-silicon waveguide in each of the plurality of regions differ.Type: GrantFiled: November 7, 2017Date of Patent: October 2, 2018Assignee: Juniper Networks, Inc.Inventors: Erik Norberg, Brian R. Koch, Gregory Alan Fish
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Publication number: 20180164501Abstract: Embodiments describe high-efficiency optical waveguide transitions—i.e., creating heterogeneous transitions between Si and III-V semiconductor regions or devices with minimal reflections. This is advantageous for III-V device performance, e.g. for an on-chip lasers achieving lower relative intensity noise (RIN) and lower phase noise by avoiding reflections, higher gain and reduced gain-ripple from an semiconductor optical amplifier (SOA) by avoiding internal reflections in the SOA. Furthermore, in some embodiments, generated photocurrent can be used as a monitor signal for control purposes, thereby avoiding the use of separate tap-monitor photodetectors, which provide additional link loss.Type: ApplicationFiled: January 29, 2018Publication date: June 14, 2018Inventors: Erik Norberg, Jonathan Edgar Roth
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Publication number: 20180138658Abstract: Described herein are methods, systems, and apparatuses to utilize a semiconductor optical amplifier (SOA) comprising a silicon layer including a silicon waveguide, a non-silicon layer disposed on the silicon layer and including a non-silicon waveguide, first and second mode transition region comprising tapers in the silicon waveguide and/or the non-silicon waveguide for exchanging light between the waveguide, and a plurality of regions disposed between the first and second mode transition regions comprising different cross-sectional areas of the silicon waveguide and the non-silicon waveguide such that confinement factors for the non-silicon waveguide in each of the plurality of regions differ.Type: ApplicationFiled: November 7, 2017Publication date: May 17, 2018Inventors: Erik Norberg, Brian R. Koch, Gregory Alan Fish
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Patent number: 9964703Abstract: Described are various configurations of integrated wavelength lockers including asymmetric Mach-Zehnder interferometers (AMZIs) and associated detectors. Various embodiments provide improved wavelength-locking accuracy by using an active tuning element in the AMZI to achieve an operational position with high locking sensitivity, a coherent receiver to reduce the frequency-dependence of the locking sensitivity, and/or a temperature sensor and/or strain gauge to computationally correct for the effect of temperature or strain changes.Type: GrantFiled: August 29, 2017Date of Patent: May 8, 2018Assignee: Juniper Networks, Inc.Inventors: John Parker, Jared Bauters, Jonathan Edgar Roth, Erik Norberg, Gregory Alan Fish
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Publication number: 20180100967Abstract: Described are various configurations of integrated wavelength lockers including asymmetric Mach-Zehnder interferometers (AMZIs) and associated detectors. Various embodiments provide improved wavelength-locking accuracy by using an active tuning element in the AMZI to achieve an operational position with high locking sensitivity, a coherent receiver to reduce the frequency-dependence of the locking sensitivity, and/or a temperature sensor and/or strain gauge to computationally correct for the effect of temperature or strain changes.Type: ApplicationFiled: August 29, 2017Publication date: April 12, 2018Inventors: John Parker, Jared Bauters, Jonathan Edgar Roth, Erik Norberg, Gregory Alan Fish
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Publication number: 20180102628Abstract: Described are various configurations of integrated wavelength lockers including asymmetric Mach-Zehnder interferometers (AMZIs) and associated detectors. Various embodiments provide improved wavelength-locking accuracy by using an active tuning element in the AMZI to achieve an operational position with high locking sensitivity, a coherent receiver to reduce the frequency-dependence of the locking sensitivity, and/or a temperature sensor and/or strain gauge to computationally correct for the effect of temperature or strain changes.Type: ApplicationFiled: August 29, 2017Publication date: April 12, 2018Inventors: John Parker, Jared Bauters, Jonathan Edgar Roth, Erik Norberg, Gregory Alan Fish
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Publication number: 20180102627Abstract: Described are various configurations of integrated wavelength lockers including asymmetric Mach-Zehnder interferometers (AMZIs) and associated detectors. Various embodiments provide improved wavelength-locking accuracy by using an active tuning element in the AMZI to achieve an operational position with high locking sensitivity, a coherent receiver to reduce the frequency-dependence of the locking sensitivity, and/or a temperature sensor and/or strain gauge to computationally correct for the effect of temperature or strain changes.Type: ApplicationFiled: August 29, 2017Publication date: April 12, 2018Inventors: John Parker, Jared Bauters, Jonathan Edgar Roth, Erik Norberg, Gregory Alan Fish
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Publication number: 20170351124Abstract: A device, such as an electroabsorption modulator, can modulate a light intensity by controllably absorbing a selectable fraction of the light. The device can include a substrate. A waveguide positioned on the substrate can guide light. An active region positioned on the waveguide can receive guided light from the waveguide, absorb a fraction of the received light, and return a complementary fraction of the received light to the waveguide. Such absorption produces heat, mostly at an input portion of the active region. The input portion of the active region can be thermally coupled to the substrate, which can dissipate heat from the input portion, and can help avoid thermal runaway of the device. The active region can be thermally isolated from the substrate away from the input portion, which can maintain a relatively low thermal mass for the active region, and can increase efficiency when heating the active region.Type: ApplicationFiled: August 24, 2017Publication date: December 7, 2017Inventors: Jonathan Edgar Roth, Erik Norberg
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Patent number: 9825429Abstract: Described herein are methods, systems, and apparatuses to utilize a semiconductor optical amplifier (SOA) comprising a silicon layer including a silicon waveguide, a non-silicon layer disposed on the silicon layer and including a non-silicon waveguide, first and second mode transition region comprising tapers in the silicon waveguide and/or the non-silicon waveguide for exchanging light between the waveguide, and a plurality of regions disposed between the first and second mode transition regions comprising different cross-sectional areas of the silicon waveguide and the non-silicon waveguide such that confinement factors for the non-silicon waveguide in each of the plurality of regions differ.Type: GrantFiled: May 22, 2017Date of Patent: November 21, 2017Assignee: AURRION, INC.Inventors: Erik Norberg, Brian R. Koch, Gregory Alan Fish
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Publication number: 20170205577Abstract: Embodiments of the invention describe apparatuses, systems, and methods of thermal management for photonic integrated circuits (PICs). Embodiments include a first device and a second device comprising including waveguides, wherein the first and second devices have different thermal operating conditions. A first region is adjacent to a waveguide of the first device, wherein its optical mode is to be substantially confined by the first region, and wherein the first region has a first thermal conductivity to dissipate heat based on the thermal operating condition of the first device. A second region is adjacent to a waveguide of the second device, wherein its optical mode is to be substantially confined by the second region, and wherein the second region has a second thermal conductivity to dissipate heat based on the thermal operating condition of the second device. In some embodiments, thermal cross talk is reduced without significantly affecting optical performance.Type: ApplicationFiled: April 4, 2017Publication date: July 20, 2017Inventors: Anand Ramaswamy, Jonathan Edgar Roth, Erik Norberg, Brian Koch
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Patent number: 9685763Abstract: Described herein are methods, systems, and apparatuses to utilize a semiconductor optical amplifier (SOA) comprising a silicon layer including a silicon waveguide, a non-silicon layer disposed on the silicon layer and including a non-silicon waveguide, first and second mode transition region comprising tapers in the silicon waveguide and/or the non-silicon waveguide for exchanging light between the waveguide, and a plurality of regions disposed between the first and second mode transition regions comprising different cross-sectional areas of the silicon waveguide and the non-silicon waveguide such that confinement factors for the non-silicon waveguide in each of the plurality of regions differ.Type: GrantFiled: July 26, 2016Date of Patent: June 20, 2017Assignee: Juniper Networks, Inc.Inventors: Erik Norberg, Brian R. Koch, Gregory Alan Fish
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Patent number: 9618696Abstract: Embodiments of the invention describe apparatuses, systems, and methods of thermal management for photonic integrated circuits (PICs). Embodiments include a first device and a second device comprising including waveguides, wherein the first and second devices have different thermal operating conditions. A first region is adjacent to a waveguide of the first device, wherein its optical mode is to be substantially confined by the first region, and wherein the first region has a first thermal conductivity to dissipate heat based on the thermal operating condition of the first device. A second region is adjacent to a waveguide of the second device, wherein its optical mode is to be substantially confined by the second region, and wherein the second region has a second thermal conductivity to dissipate heat based on the thermal operating condition of the second device. In some embodiments, thermal cross talk is reduced without significantly affecting optical performance.Type: GrantFiled: June 6, 2016Date of Patent: April 11, 2017Assignee: Aurrion, Inc.Inventors: Anand Ramaswamy, Jonathan Edgar Roth, Erik Norberg, Brian Koch
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Publication number: 20170075149Abstract: Described herein are methods, systems, and apparatuses to utilize an electro-optic modulator including one or more heating elements. The modulator can utilize one or more heating elements to control an absorption or phase shift of the modulated optical signal. At least the active region of the modulator and the one or more heating elements of the modulator are included in a thermal isolation region comprising a low thermal conductivity to thermally isolate the active region and the one or more heating elements from a substrate of the PIC.Type: ApplicationFiled: November 29, 2016Publication date: March 16, 2017Inventors: Robert Silvio Guzzon, Erik Norberg, Jonathan Edgar Roth
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Patent number: 9513497Abstract: Described herein are methods, systems, and apparatuses to utilize an electro-optic modulator including one or more heating elements. The modulator can utilize one or more heating elements to control an absorption or phase shift of the modulated optical signal. At least the active region of the modulator and the one or more heating elements of the modulator are included in a thermal isolation region comprising a low thermal conductivity to thermally isolate the active region and the one or more heating elements from a substrate of the PIC.Type: GrantFiled: February 3, 2015Date of Patent: December 6, 2016Assignee: Aurrion, Inc.Inventors: Robert Silvio Guzzon, Erik Norberg, Jonathan Edgar Roth
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Patent number: 9509122Abstract: Embodiments of the invention describe apparatuses, optical systems, and methods related to utilizing optical cladding layers. According to one embodiment, a hybrid optical device includes a silicon semiconductor layer and a III-V semiconductor layer having an overlapping region, wherein a majority of a field of an optical mode in the overlapping region is to be contained in the III-V semiconductor layer. A cladding region between the silicon semiconductor layer and the III-V semiconductor layer has a spatial property to substantially confine the optical mode to the III-V semiconductor layer and enable heat dissipation through the silicon semiconductor layer.Type: GrantFiled: August 29, 2012Date of Patent: November 29, 2016Assignee: Aurrion, Inc.Inventors: Erik Norberg, Anand Ramaswamy, Brian Koch
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Publication number: 20160313504Abstract: Embodiments of the invention describe apparatuses, systems, and methods of thermal management for photonic integrated circuits (PICs). Embodiments include a first device and a second device comprising including waveguides, wherein the first and second devices have different thermal operating conditions. A first region is adjacent to a waveguide of the first device, wherein its optical mode is to be substantially confined by the first region, and wherein the first region has a first thermal conductivity to dissipate heat based on the thermal operating condition of the first device. A second region is adjacent to a waveguide of the second device, wherein its optical mode is to be substantially confined by the second region, and wherein the second region has a second thermal conductivity to dissipate heat based on the thermal operating condition of the second device. In some embodiments, thermal cross talk is reduced without significantly affecting optical performance.Type: ApplicationFiled: June 6, 2016Publication date: October 27, 2016Inventors: Anand Ramaswamy, Jonathan Edgar Roth, Erik Norberg, Brian Koch
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Patent number: 9431791Abstract: Described herein are methods, systems, and apparatuses to utilize a semiconductor optical amplifier (SOA) comprising a silicon layer including a silicon waveguide, a non-silicon layer disposed on the silicon layer and including a non-silicon waveguide, first and second mode transition region comprising tapers in the silicon waveguide and/or the non-silicon waveguide for exchanging light between the waveguide, and a plurality of regions disposed between the first and second mode transition regions comprising different cross-sectional areas of the silicon waveguide and the non-silicon waveguide such that confinement factors for the non-silicon waveguide in each of the plurality of regions differ.Type: GrantFiled: February 2, 2015Date of Patent: August 30, 2016Assignee: Aurrion, Inc.Inventors: Erik Norberg, Brian R. Koch, Gregory Alan Fish
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Patent number: 9395491Abstract: Described herein are methods, systems, and apparatuses to utilize shielding regions formed in photonic integrated circuits (PICs). Portions of layers of a PIC are selectively removed, and optionally, replaced with another material. These regions are formed to block stray light from interacting with optical components of the PIC, and therefore can prevent optical crosstalk and/or noise. Metal or another absorption/reflective material can be deposited in the place of the removed layer portions of the PIC to absorb or reflect light. Additionally, by depositing metal, RF isolation can be achieved by forming a ground plane, by forming a ground trace that shields a signal trace in an RF transmission line, or by placing a conductor which terminates electric fields between sensitive RF receivers and adjacent RF elements. Additionally the process operations required to perform isolation can also be used to change the thermal conductivity of devices and regions on a PIC.Type: GrantFiled: February 3, 2015Date of Patent: July 19, 2016Assignee: Aurrion, Inc.Inventors: Gregory Alan Fish, Erik Norberg
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Patent number: 9360620Abstract: Embodiments of the invention describe apparatuses, systems, and methods of thermal management for photonic integrated circuits (PICs). Embodiments include a first device and a second device comprising including waveguides, wherein the first and second devices have different thermal operating conditions. A first region is adjacent to a waveguide of the first device, wherein its optical mode is to be substantially confined by the first region, and wherein the first region has a first thermal conductivity to dissipate heat based on the thermal operating condition of the first device. A second region is adjacent to a waveguide of the second device, wherein its optical mode is to be substantially confined by the second region, and wherein the second region has a second thermal conductivity to dissipate heat based on the thermal operating condition of the second device. In some embodiments, thermal cross talk is reduced without significantly affecting optical performance.Type: GrantFiled: August 29, 2012Date of Patent: June 7, 2016Assignee: Aurrion, Inc.Inventors: Anand Ramaswamy, Jonathan E. Roth, Erik Norberg, Brian Koch