IL194792A

Arrayed imaging systems and associated method

Abstract

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IL194792A, drawing sheet 1
Sheet 1 of 593

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382 claims: 57 independent, 325 dependent

  1. 1
    WHAT IS CLAIMED IS:1. Arrayed imaging systems comprising: an array of detectors formed with a common base;and a first array of layered optical elements, each one of the layered optical elements being optically connected with a detector in the array of detectors to form one imaging system in the arrayed imaging systems.
  2. 69
    A method for fabricating a plurality of imaging systems, comprising:forming a first array of optical elements, each one of the optical elements being optically connected with at least one detector in an array of detectors having a common base;forming a second array of optical elements optically connected with the first array of optical elements so as to collectively form an array of layered optical elements, each one of the layered optical elements being optically connected with one of the detectors in the array of detectors;and separating the array of detectors and the array of layered optical elements into the plurality of imaging systems, each one of the plurality of imaging systems including at least one layered optical element optically connected with at least one detector, wherein forming the first array of optical elements includes configuring a planar interface between the first array of optical elements and the array of detectors.
  3. 70
    A method for manufacturing arrayed imaging systems, each imaging system in the arrayed imaging systems having at least one detector associated therewith, the method comprising:fabricating an array of layered optical elements by sequential application of at least one fabrication master, each one of layered optical elements being optically connected with the at least one detector associated with that imaging system.
  4. 95
    A method of forming arrayed optics with a common base, comprising:forming an array of a plurality of layered optical elements as the arrayed optics by sequentially applying at least one fabrication master aligned to the common base.
  5. 96
    A method for manufacturing arrayed imaging systems including at least an optics subsystem and an image processor subsystem, both connected with a detector subsystem, the method comprising:(a) generating an initial arrayed imaging systems design, including an optics subsystem design, a detector subsystem design and an image processor subsystem design;(b) testing at least one of the subsystem designs to determine if the at least one of the subsystem designs conforms within predefined parameters;if the at least one of the subsystem designs does not conform within the predefined parameters, then: (c) modifying the initial arrayed imaging systems design, using a set of potential parameter modifications;(d) repeating (b) and (c) until the at least one of the subsystem designs conforms within the predefined parameters to yield a modified arrayed imaging systems design;(e) fabricating the optical, detector and image processor subsystems in accordance with the modified arrayed imaging systems design;and (f) assembling the arrayed imaging systems from the subsystems fabricated in (e).
  6. 112
    A software product comprising instructions stored on computer-readable media, wherein the instructions, when executed by a computer, generate an arrayed imaging systems design, the instructions comprising:(a) instructions for generating the arrayed imaging systems design, including an optics subsystem design, a detector subsystem design and an image processor subsystem design;(b) instructions for testing at least one of the optical, detector and image processor subsystem designs to determine if the at least one of the subsystem designs conforms within predefined parameters;if the at least one of the subsystem designs does not conform within the predefined parameters, then: (c) instructions for modifying the arrayed imaging systems design, using a set of parameter modifications;and (d) instructions for repeating (b) and (c) until the at least one of the subsystem designs conforms within the predefined parameters to yield the arrayed imaging systems design.
  7. 114
    A multi-index optical element comprising:a monolithic material including a plurality of volumetric regions, each of the plurality of volumetric regions having a defined refractive index, at least two of the volumetric regions having different refractive indices, the plurality of volumetric regions being configured to predeterministically modify phase of electromagnetic energy transmitted through the monolithic material.
  8. 120
    An imaging system, comprising:optics for forming an image, the optics including a multi-index optical element having a plurality of volumetric regions, each of the plurality of volumetric regions having a defined refractive index, at least two of the volumetric regions having different refractive indices, the plurality of volumetric regions being configured to predeterministically modify phase of electromagnetic energy transmitted therethrough;a detector for converting the image into electronic data;and a processor for processing the electronic data to generate output.
  9. 124
    A method for manufacturing a multi-index optical element, comprising:forming a plurality of volumetric regions in a monolithic material such that (i) each of the plurality of volumetric regions has a defined refractive index, (ii) at least two of the volumetric regions have different refractive indices, and (iii) the plurality of volumetric regions predeterministically modify phase of electromagnetic energy transmitted therethrough.
  10. 128
    A method for forming an image of an object, comprising:predeterministically modifying phase of electromagnetic energy from the object by transmitting the electromagnetic energy through a monolithic material having a plurality of volumetric regions, each of the plurality of volumetric regions having a defined refractive index and at least two of the volumetric regions having different refractive indices;converting the electromagnetic energy into electronic data;and processing the electronic data to form the image.
  11. 131
    Arrayed imaging systems, comprising:an array of detectors formed on a common base;a plurality of arrays of optical elements;and a plurality of bulk material layers separating the plurality of arrays of optical elements, wherein the plurality of arrays of optical elements and the plurality of bulk material layers cooperate to form an array of optics, each of the optics being optically connected with at least one of the detectors of the array of detectors so as to form one imaging system of the arrayed imaging systems, and wherein each one of the plurality of bulk material layers defines a distance along at least one of X-, Y- and Z-axes between adjacent arrays of optical elements.
  12. 147
    A method for machining an array of templates for optical elements comprising:fabricating the array of templates using at least one of a slow tool servo approach, a fast tool servo approach, a multi-axis milling approach and a multi-axis grinding approach.
  13. 148
    In a method for manufacturing a fabrication master including an array of templates for optical elements defined thereon, an improvement comprising:directly fabricating the array of templates.
  14. 151
    A method for manufacturing an array of optical elements comprising:directly fabricating the array of optical elements using at least a selected one of a slow tool servo approach, a fast tool servo approach, a multi-axis milling approach and a multi-axis grinding approach.
  15. 152
    In a method for manufacturing an array of optical elements, an improvement comprising:forming the array of optical elements by direct fabrication.
  16. 153
    A method for manufacturing a fabrication master used in forming a plurality of optical elements therewith, the method comprising:determining a first surface that includes features for forming the plurality of optical elements;determining a second surface as a function of (a) the first surface and (b) material characteristics of the fabrication master;and performing a fabrication routine based on the second surface to form the first surface on the fabrication master.
  17. 164
    A method for fabricating a fabrication master for use in forming a plurality of optical elements, comprising:forming a plurality of first surface features on the fabrication master using a first tool;and forming a plurality of second surface features on the fabrication master using a second tool, the second surface features being different from the first surface features, wherein a combination of the first and second surface features is configured to form the plurality of optical elements.
  18. 165
    A method for manufacturing a fabrication master for use in forming a plurality of optical elements, comprising:forming a plurality of first features on the fabrication master, each of the plurality of first features approximating second features that form one of the plurality of optical elements;and smoothing the plurality of first features to form the second features.
  19. 168
    A method for manufacturing a fabrication master for use in forming a plurality of optical elements, comprising:defining the plurality of optical elements to include at least two distinct types of optical elements;and directly fabricating features configured to form the plurality of optical elements on a surface of the fabrication master.
  20. 169
    A method for manufacturing a fabrication master that includes a plurality of features for forming optical elements therewith, the method comprising:defining the plurality of features as including at least one type of element having an aspheric surface;and directly fabricating the features on a surface of the fabrication master.
  21. 170
    A method for manufacturing a fabrication master including a plurality of features for forming optical elements therewith, comprising:defining a first fabrication routine for forming a first portion of the features on a surface of the fabrication master;directly fabricating at least one of the features on the surface using the first fabrication routine;measuring a surface characteristic of the at least one of the features;defining a second fabrication routine for forming a second portion of the features on the surface of the fabrication master, wherein the second fabrication routine comprises the first fabrication routine adjusted in at least one aspect in accordance with the surface characteristic so measured;and directly fabricating at least one of the features on the surface using the second fabrication routine.
  22. 171
    In a machine for manufacturing a fabrication master for forming a plurality of optical elements therewith, the machine including a spindle for holding the fabrication master and a tool holder for holding a machine tool that fabricates features for forming the plurality of optical elements on a surface of the fabrication master, an improvement comprising:a metrology system configured to cooperate with the spindle and the tool holder for measuring a characteristic of the surface.
  23. 176
    A method for manufacturing a fabrication master for forming a plurality of optical elements therewith, comprising:directly fabricating features for forming the plurality of optical elements on a surface of the fabrication master;and directly fabricating at least one alignment feature on the surface, the alignment feature being configured to cooperate with a corresponding alignment feature on a separate object to define a separation distance between the surface and the separate object.
  24. 181
    A method for manufacturing a fabrication master for forming an array of optical elements therewith, comprising:directly fabricating on a surface of the substrate features for forming the array of optical elements;and directly fabricating on the surface at least one alignment feature, the alignment feature being configured to cooperate with a corresponding alignment feature on a separate object to indicate at least one of a translation, a rotation and a separation between the surface and the separate object.
  25. 182
    A method for modifying a substrate to form a fabrication master for an array of optical elements using a multi-axis machine tool, comprising:mounting the substrate to a substrate holder;performing preparatory machining operations on the substrate;directly fabricating on a surface of the substrate features for forming the array of optical elements;and directly fabricating on the surface of the substrate at least one alignment feature;wherein the substrate remains mounted to the substrate holder during the performing and directly fabricating.
  26. 186
    A method for fabricating an array of layered optical elements, comprising:using a first fabrication master to form a first layer of optical elements on a common base, the first fabrication master having a first master substrate including a negative of the first layer of optical elements formed thereon;using a second fabrication master to form a second layer of optical elements adjacent to the first layer of optical elements to form the array of layered optical elements on the common base, the second fabrication master having a second master substrate including a negative of the second layer of optical elements formed thereon.
  27. 190
    A fabrication master, comprising:an arrangement for molding a moldable material into a predetermined shape that defines a plurality of optical elements;and an arrangement for aligning the molding arrangement in a predetermined orientation with respect to a common base when the fabrication master is used in combination with the common base, such that the molding arrangement may be aligned with the common base for repeatability and precision with less than two wavelengths of error.
  28. 200
    Arrayed imaging systems, comprising:a common base having a first side and a second side remote from the first side;a first plurality of optical elements constructed and arranged in alignment on the first side of the common base where alignment error is less than two wavelengths.
  29. 204
    Arrayed imaging systems, comprising:a first common base, a first plurality of optical elements constructed and arranged in precise alignment on the first common base, a spacer having a first surface affixed to the first common base, the spacer presenting a second surface remote from the first surface, the spacer forming a plurality of holes therethrough aligned with the first plurality of optical elements, for transmitting electromagnetic energy therethrough, a second common base bonded to the second surface to define respective gaps aligned with the first plurality of optical elements, movable optics positioned in at least one of the gaps, and arrangement for moving the movable optics.
  30. 205
    A method for the manufacture of an array of layered optical elements on a common base, comprising:(a) preparing the common base for deposition of the array of layered optical elements;(b) mounting the common base and a first fabrication master such that precision alignment of at least two wavelengths exists between the first fabrication master and the common base, (c) depositing a first moldable material between the first fabrication master and the common base, (d) shaping the first moldable material by aligning and engaging the first fabrication master and the common base, (e) curing the first moldable material to form a first layer of optical elements on the common base, (f) replacing the first fabrication master with a second fabrication master, (g) depositing a second moldable material between the second fabrication master and the first layer of optical elements, (h) shaping the second moldable material by aligning and engaging the second fabrication master and the common base, and (i) curing the second moldable material to form a second layer of optical elements on the common base.
  31. 208
    In a method for fabricating a detector pixel formed by a set of processes, an improvement comprising:forming at least one optical element within the detector pixel using at least one of the set of processes, the optical element being configured for affecting electromagnetic energy over a range of wavelengths.
  32. 222
    An electromagnetic energy detection system, comprising:a detector including a plurality of detector pixels;and an optical element integrally formed with at least one of the plurality of detector pixels, the optical element being configured for affecting electromagnetic energy over a range of wavelengths.
  33. 245
    An electromagnetic energy detection system for detecting electromagnetic energy over a range of wavelengths incident thereon, comprising:a detector including a plurality of detector pixels, each one of the detector pixels including at least one photosensitive region;and optics integrally formed with at least one of the plurality of detector pixels, the optics being configured to selectively redirect the electromagnetic energy over the range of wavelengths onto the photosensitive region of the at least one detector pixel.
  34. 257
    In an electromagnetic energy detector, an improvement comprising:a structure integrally formed with the detector and including a plurality of subwavelength features for redistributing electromagnetic energy incident thereon over a range of wavelengths.
  35. 268
    In an electromagnetic energy detector, an improvement comprising:a thin film filter integrally formed with the detector to provide at least one of bandpass filtering, edge filtering, color filtering, high-pass filtering, low-pass filtering, antireflection, notch filtering and blocking filtering.
  36. 275
    In a method for forming an electromagnetic energy detector by a set of processes, an improvement comprising:forming a thin film filter within the detector using at least one of the set of processes;and configuring the thin film filter for performing at least a selected one of bandpass filtering, edge filtering, color filtering, high-pass filtering, low-pass filtering, antireflection, notch filtering, blocking filtering and chief ray angle correction.
  37. 278
    In an electromagnetic energy detector including at least one detector pixel with a photosensitive region formed therein, an improvement comprising:a chief ray angle corrector integrally formed with the detector pixel at an entrance pupil of the detector pixel, to redistribute at least a portion of electromagnetic energy incident thereon toward the photosensitive region.
  38. 283
    An electromagnetic energy detection system, comprising:a plurality of detector pixels, and a thin film filter integrally formed with at least one of the detector pixels and configured for at least a selected one of bandpass filtering, edge filtering, color filtering, high-pass filtering, low-pass filtering, anti-reflection, notch filtering, blocking filtering and chief ray angle correction.
  39. 288
    An electromagnetic energy detection system comprising:a plurality of detector pixels, each one of the plurality of detector pixels including a photosensitive region and a chief ray angle corrector integrally formed with the detector pixel at an entrance pupil of the detector pixel, the chief ray angle corrector being configured for directing at least a portion of electromagnetic energy incident thereon toward the photosensitive region of the detector pixel.
  40. 293
    A method for simultaneously generating at least first and second filter designs, each one of the first and second filter designs defining a plurality of thin film layers, the method comprising:a) defining a first set of requirements for the first filter design and a second set of requirements for the second filter design;b) optimizing at least a selected parameter characterizing the thin film layers in each one of the first and second filter designs in accordance with the first and second sets of requirements to generate a first unconstrained design for the first filter design and a second unconstrained design for the second filter design;c) pairing one of the thin film layers in the first filter design with one of the thin film layers in the second filter design to define a first set of paired layers, the layers that are not the first set of paired layers being non-paired layers;d) setting the selected parameter of the first set of paired layers to a first common value;and e) re-optimizing the selected parameter of the non-paired layers in the first and second filter designs to generate a first partially constrained design for the first filter design and a second partially constrained design for the second filter design, wherein the first and second partially constrained designs meet at least a portion of the first and second sets of requirements, respectively.
  41. 308
    In a method for forming an electromagnetic energy detector including at least first and second detector pixels, an improvement comprising:integrally forming a first thin film filter with the first detector pixel and a second thin film filter with the second detector pixel, such that the first and second thin film filters share at least a common layer.
  42. 318
    In an electromagnetic energy detector including at least first and second detector pixels, an improvement comprising:first and second thin film filters integrally formed with the first and second detector pixels, respectively, wherein the first and second thin film filters are configured for modifying electromagnetic energy incident thereon, and wherein the first and second thin film filters share at least one layer in common.
  43. 327
    In an electromagnetic energy detector including a plurality of detector pixels, an improvement comprising:an electromagnetic energy modifying element integrally formed with at least a selected one of the detector pixels, the electromagnetic energy modifying element being configured for directing at least a portion of electromagnetic energy incident thereon within the selected detector pixel, wherein the electromagnetic energy modifying element comprises a material compatible with processes used for forming the detector, and wherein the electromagnetic energy modifying element is configured to include at least one non-planar surface.
  44. 333
    In a method for forming an electromagnetic energy detector by a set of processes, the electromagnetic energy detector including a plurality of detector pixels, an improvement comprising:integrally forming, with at least a selected one of the detector pixels and by at least one of the set of processes, at least one electromagnetic energy modifying element configured for directing at least a portion of electromagnetic energy incident thereon within the selected detector pixel, wherein integrally forming comprises: depositing a first layer;forming at least one relieved area in the first layer, the relieved area being characterized by substantially planar surfaces;depositing a first layer on top of the relieved area such that the first layer defines at least one non-planar feature;depositing a second layer on top of the first layer such that the second layer at least partially fills the non-planar feature;and planarizing the second layer so as to leave a portion of the second layer fdling the nonplanar features of the first layer, forming the electromagnetic energy modifying element.
  45. 335
    In a method for forming an electromagnetic energy detector by a set of processes, the detector including a plurality of detector pixels, an improvement comprising:integrally forming, with at least one of the plurality of detector pixels and by at least one of the set of processes, an electromagnetic energy modifying element configured for directing at least a portion of electromagnetic energy incident thereon within the selected detector pixel, wherein integrally forming comprises: depositing a first layer, forming at least one protrusion in the first layer, the protrusion being characterized by substantially planar surfaces, and depositing a first layer on top of the planar feature such that the first layer defines at least one non-planar feature as the electromagnetic energy modifying element.
  46. 338
    A method for designing an electromagnetic energy detector comprising:specifying a plurality of input parameters;and generating a geometry of subwavelength structures, based on the plurality of input parameters, for directing the input electromagnetic energy within the detector.
  47. 343
    A method for fabricating arrayed imaging systems, comprising:forming an array of layered optical elements, each one of the layered optical elements being optically connected with at least one detector in an array of detectors formed with a common base so as to form arrayed imaging systems, wherein forming the array of layered optical elements includes: using a first fabrication master, forming a first layer of optical elements on the array of detectors, the first fabrication master having a first master substrate including a negative of the first layer of optical elements formed thereon, using a second fabrication master, forming a second layer of optical elements adjacent to the first layer of optical elements, the second fabrication master including a second master substrate including a negative of the second layer of optical elements formed thereon.
  48. 359
    Arrayed imaging optics comprising:an array of layered optical elements, each one of the layered optical elements being optically connected with a detector in the array of detectors, wherein the array of layered optical elements is formed at least in part by sequential application of at least one fabrication master including features for defining the array of layered optical elements thereon.
  49. 360
    A method for fabricating an array of layered optical elements, comprising:providing a first fabrication master having a first master substrate including a negative of a first layer of optical elements formed thereon;using the first fabrication master, forming the first layer of optical elements on a common base;providing a second fabrication master having a second master substrate including a negative of a second layer of optical elements formed thereon;using the second fabrication master, forming the second layer of optical elements adjacent to the first layer of optical elements so as to form the array of layered optical elements on the common base;wherein providing the first fabrication master comprises directly fabricating the negative of the first layer of optical elements on the first master substrate.
  50. 361
    An arrayed imaging systems comprising:a common base;an array of detectors having detector pixels formed on the common base by a set of processes, each one of the detector pixels including a photosensitive region;and an array of optics optically connected with the photosensitive region of a corresponding one of the detector pixels thereby forming arrayed imaging systems, wherein at least one of the detector pixels includes at least one optical feature integrated therein and formed using at least one of the set of processes, to affect electromagnetic energy incident on the detector over a range of wavelengths.
  51. 362
    An arrayed imaging systems, comprising:a common base;an array of detectors having detector pixels formed on the common base, each one of the detector pixels including a photosensitive region;and an array of optics optically connected with the photosensitive region of a corresponding one of the detector pixels, thereby forming arrayed imaging systems.
  52. 363
    Arrayed imaging systems, comprising:an array of detectors formed on a common base;and an array of optics, each one of the optics being optically connected with at least one of the detectors in the array of detectors so as to form arrayed imaging systems, each imaging system including optics optically connected with at least one detector in the array of detectors.
  53. 368
    A method for fabricating an array of layered optical elements, the method comprising:using a first fabrication master, forming a first array of elements on a common base, the first fabrication master comprising a first master substrate including a negative of a first array of optical elements directly fabricated thereon;and using a second fabrication master, forming a second array of optical elements adjacent to the first array of optical elements on the common base so as to form the array of layered optical elements on the common base, the second fabrication master comprising a second master substrate including a negative of the second array of optical elements formed thereon, the second array of optical elements on the second master substrate corresponding in position to the first array of optical elements on the first master substrate.
  54. 369
    An arrayed imaging systems, comprising:a common base;an array of detectors having detector pixels formed on the common base, each one of the detector pixels including a photosensitive region;and an array of optics optically connected with the photosensitive region of a corresponding one of the detector pixels thereby forming arrayed imaging systems, wherein at least one of the optics is switchable between first and second states corresponding to first and second magnifications, respectively.
  55. 370
    A layered optical element comprising first and second layers of optical elements forming a common surface having an anti-reflection layer.
  56. 379
    A camera for forming an image, comprising:arrayed imaging systems including: an array of detectors formed with a common base, and a first array of layered optical elements, each one of the layered optical elements being optically connected with a detector in the array of detectors;and a signal processor for forming an image.
  57. 381
    A camera for use in performing a task, comprising:arrayed imaging systems including: an array of detectors formed with a common base, and a first array of layered optical elements, each one of the layered optical elements being optically connected with a detector in the array of detectors;and a signal processor for performing the task.
Independent claims57