Claims
- 1. A separator for separating a first type of particle having a first magnetic susceptibility from a second type of particle having a second magnetic susceptibiltiy, comprising:
a first material having a first magnetism, said first material comprising magnetic microbeads;; a second material having a second magnetism, said second material comprising an ion exchange polymer; and a plurality of boundaries between said first material and said second material, said plurality of boundaries providing a plurality of paths between a first region and a second region, each of said plurality of boundaries having a magnetic gradient within said plurality of paths; said magnetic gradient causing said first type of particle to pass through said second material at a greater rate than said second type of particle.
- 2. The separator as claimed in claim 1, further comprising an electrode, said electrode located within said second region.
- 3. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises super-paramagnetic microbeads.
- 4. The separator as claimed in claim 3, wherein said super-paramagnetic microbeads have magnetic spins reversibly changeable between aligned when an externally applied magnetic field is turned on and disordered when said externally applied magnetic field is turned off.
- 5. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises microbeads comprising at least one of Fe and Fe oxide.
- 6. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises diamagnetic material reversibly changeable to paramagnetic material.
- 7. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises diamagnetic material reversibly changeable to paramagnetic material in the presence of an externally applied magnetic field.
- 8. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises polymer coated microbeads comprising organo-Fe.
- 9. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises polymer coated microbeads comprising at least one of Fe and Fe oxide.
- 10. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises diamagnetic microbeads reversibly changeable to paramagnetic microbeads.
- 11. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises diamagnetic microbeads reversibly changeable to paramagnetic microbeads in the presence of an externally applied magnetic field.
- 12. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises polymer coated diamagnetic microbeads reversibly changeable to polymer coated paramagnetic microbeads.
- 13. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises polymer coated diamagnetic microbeads reversibly changeable to polymer coated paramagnetic microbeads in the presence of an externally applied magnetic field.
- 14. The separator as claimed in claim 1, wherein said second material having a second magnetism comprises perfluorinated sulfonic acid, and said first material having a first magnetism comprises polymer coated magnetic microbeads.
- 15. The separator as claimed in claim 1, wherein said first material having a first magnetism comprises uncoated magnetic microbeads.
- 16. The separator as claimed in claim 1, further comprising an external magnetic field turned on or off, and wherein said second material having a second magnetism comprises perluorinated sulfonic acid, and said first material having a first magnetism comprises polystyrene coated Fe/Fe oxide microbeads.
- 17. The separator as claimed in claim 1, wherein said second material having a second magnetism comprises perfluorinated sulfonic acid, and said first material having a first magnetism comprises polystyrene coated organo-Fe microbeads.
- 18. The separator as claimed in claim 1, wherein said first material comprises a paramagnetic species and wherein said second material comprises a diamagnetic species.
- 19. The separator as claimed in claim 1, wherein said first material comprises a paramagnetic species having a first magnetic susceptibility and said second material comprises a different paramagnetic species having a second magnetic susceptibility.
- 20. The separator as claimed in claim 1, wherein said first material comprises a diamagnetic species having a first magnetic susceptibility and said second material comprises a different diamagnetic species having a second magnetic susceptibility, and said first magnetic susceptibility is different from said second susceptibility.
- 21. The separator as claimed in claim 1, wherein said first material comprises a paramagnetic species having a first magnetic susceptibility and said second material comprises a nonmagnetic species.
- 22. The separator as claimed in claim 1, wherein said first material comprises a diamagnetic species having a first magnetic, susceptibility and said second material comprises a nonmagnetic species.
- 23. The separator as claimed in claim 1, further comprising one of a liquid, a solid, a gas, and a plasma.
- 24. The separator as claimed in claim 1, wherein said plurality of paths have an average width in the range of from about 1 nanometer to about 10 micrometers.
- 25. The separator as claimed in claim 1, wherein said plurality of paths have an average width in the range of from about 1 nanometer to about 2 micrometers.
- 26. The separator as claimed in claim 1, wherein said plurality of paths have an average width in the range of from about 1 nanometer to about 0.5 micrometer.
- 27. A cell, comprising:
an electrolyte including a first type of particles; said first type of particles having a first magnetic susceptibility; a first electrode arranged in said electrolyte; and a second electrode arranged in said electrolyte, wherein said first type of particles transform into a second type of particles once said first type of particles reach said second electrode, said second type of particles having a second magnetic susceptibility, wherein said first and said second magnetic susceptibilities are different, said second electrode having a surface with a coating which includes: a first material having a first magnetism, said first material comprising magnetic microbeads; a second material having a second magnetism, said second material comprising magnetic an ion exchange polymer; and a plurality of boundaries providing a plurality of paths between said electrolyte and said surface of said second electrode, each of said plurality of boundaries providing a magnetic gradient within each of said plurality of paths.
- 28. The cell as claimed in claim 27, wherein said first material comprises a paramagnetic species and wherein said second material comprises a diamagnetic species.
- 29. The cell as claimed in claim 27, wherein said first material comprises a paramagnetic species having a first magnetic susceptibility and said second material comprises a paramagnetic species having a second magnetic susceptibility, and said first magnetic susceptibility is different from said second susceptibility.
- 30. The cell as claimed in claim 27, wherein said first material comprises a diamagnetic species having a first magnetic susceptibility and said second material comprises a diamagnetic species having a second magnetic susceptibility, and said first magnetic susceptibility is different from said second susceptibility.
- 31. The cell as claimed in claim 27, wherein said first material comprises a paramagnetic species having a first magnetic susceptibility and said second material comprises a nonmagnetic species.
- 32. The cell as claimed in claim 27, wherein said first material comprises a diamagnetic species having a first magnetic susceptibility and said second material comprises a nonmagnetic species.
- 33. The cell as claimed in claim 27, wherein said electrolyte comprises an electrolyzable gas.
- 34. The cell as claimed in claim 27, wherein said electrolyte comprises O2.
- 35. The cell as claimed in claim 27, wherein said electrolyte comprises a chlor-alkali.
- 36. The cell as claimed in claim 27, wherein the coating on the surface of said second electrode comprises a magnetic composite.
- 37. A method of making an electrode with a surface coated with a magnetic composite with a plurality of boundary regions with magnetic gradients having paths to the surface of said electrode, comprising the steps of:
mixing a first solution which includes a suspension of at least approximately 1 percent by weight of inert polymer coated magnetic microbeads containing between approximately 10 percent and approximately 90 percent magnetizable polymer material having diameters at least 0.5 micrometers in a first solvent with a second solution of at least approximately 2 percent by weight of ion exchange polymers in a second solvent to yield a mixed suspension; applying said mixed suspension to the surface of the electrode, said electrode being arranged in a magnetic field of at least approximately 0.05 Tesla which has a component oriented approximately along the normal of said electrode surface; and evaporating said first solvent and said second solvent to yield the electrode with a surface coated with the magnetic composite having a plurality of boundary regions with magnetic gradients having paths to the surface of the electrode.
- 38. The method as claimed in claim 37, wherein said mixing step comprises mixing said first solution which includes a suspension of between approximately 2 percent and approximately 10 percent by weight of inert polymer coated magnetic microbeads with said second solution.
- 39. The method as claimed in claim 37, wherein said mixing step comprises mixing said first solution which includes inert polymer coated magnetic microbeads containing between 50 percent and 90 percent magnetizable polymer material with said second solution.
- 40. The method as claimed in claim 37, wherein said mixing step comprises mixing said first solution which includes inert polymer coated magnetic microbeads containing 90 percent magnetizable polymer material with said second solution.
- 41. The method as claimed in claim 37, wherein said applying step comprises applying approximately between 2 percent and approximately 75 percent by volume of said mixed suspension to the surface of the electrode.
- 42. The method as claimed in claim 37, wherein said applying step comprises applying between 25 percent and 60 percent by volume of said mixed suspension to the surface of the electrode.
- 43. The method as claimed in claim 37, wherein said mixing step comprises mixing a first solution which includes a suspension of at least approximately 5 percent by weight of inert polymer coated magnetic microbeads containing between approximately 10 percent and approximately 90 percent magnetizable polymer material having diameters ranging between approximately 0.5 micrometers and approximately 12 micrometers.
- 44. The method as claimed in claim 37, wherein said mixing step comprises mixing a first solution which includes a suspension of at least approximately 5 percent by weight of inert polymer coated magnetic microbeads containing between approximately 10 percent and approximately 90 percent magnetizable polymer material having diameters ranging between approximately 1 micrometer and approximately 2 micrometers.
- 45. The method as claimed in claim 37, wherein said applying step comprises applying said mixed suspension to the surface of the electrode, said electrode being arranged in a magnetic field between approximately 0.05 Tesla and approximately 2 Tesla.
- 46. The method as claimed in claim 37, wherein said applying step comprises applying said mixed suspension to the surface of the electrode, said electrode being arranged in a magnetic field of approximately 2 Tesla.
- 47. The method as claimed in claim 37, wherein said mixing step comprises mixing a first solution which includes a suspension of at least approximately 5 percent by weight of inert polymer coated magnetic microbeads containing between approximately 10 percent and approximately 90 percent magnetizable polymer material having diameters at least 0.5 micrometers in a first solvent with a second solution of at least approximately 5 percent by weight of Nafion in a second solvent to yield said mixed suspension.
- 48. The method as claimed in claim 37, wherein said mixing step comprises mixing a first solution which includes a suspension of at least approximately 5 percent by weight of inert polymer coated magnetic microbeads containing between approximately 10 percent and approximately 90 percent organo-Fe material having diameters at least 0.5 micrometers in a first solvent with a second solution of at least approximately 5 percent by weight of ion exchange polymers in a second solvent to yield said mixed suspension.
- 49. A method of making an electrode with a surface coated with a composite with a plurality of boundary regions with magnetic gradients having paths to the surface of said electrode when an external magnetic field is turned on, comprising the steps of:
mixing a first solution which includes a suspension of at least 5 percent by weight of inert polymer coated microbeads containing between 10 percent and 90 percent magnetizable non-permanent magnet material having diameters at least 0.5 micrometers in a first solvent with a second solution of at least 5 percent of ion exchange polymers in a second solvent to yield a mixed suspension; applying said mixed suspension to the surface of the electrode; evaporating said first solvent and said second solvent to yield the electrode with a surface coated with the composite having a plurality of boundary regions with magnetic gradients having paths to the surface of the electrode when the external magnet is turned on.
- 50. The method as claimed in claim 49, wherein said magnetizable non-permanent magnet material comprises Fe/Fe oxide material.
- 51. An electrode for channeling flux of magnetic species, comprising:
a conductor; and a composite in surface contact with said conductor, said composite including a first material having a first magnetism and a second material having a second magnetism, wherein said first material comprises magnetic microbeads and said second material comprises an ion exchange polymer, said composite having a plurality of boundaries providing pathways between said first material and said second material, wherein said pathways channel the flux of said magnetic species through said pathways to said conductor.
- 52. The electrode as claimed in claim 51, wherein said first material comprises a paramagnetic material having a first magnetic susceptibility and said second material comprises a paramagnetic material having a second magnetic susceptibility.
- 53. An electrode for effecting electrolysis of magnetic species, comprising:
a conductor; and magnetic means in surface contact with said conductor for enhancing the flux of said magnetic species in an electrolyte solution to said conductor and effecting electrolysis of said magnetic species, wherein said magnetic means comprises a magnetic composite, said magnetic composite comprising magnetic microbeads and an ion exchange polymer.
- 54. An electrode for effecting electrolysis of magnetic species, comprising:
a conductor; and means in surface contact with said conductor for enhancing the flux of said magnetic species to said conductor and effecting electrolysis of said magnetic species, wherein said means in surface contact with said conductor is a composite material, said composite material comprising magnetic microbeads and an ion exchange polymer.
- 55. An electrode for electrolysis of magnetic species, comprising:
a conductor; and a composite magnetic material in surface contact with said conductor, said composite magnetic material comprising magnetic microbeads and an ion exchange polymer, said composite having a plurality of transport pathways through said composite magnetic material, said plurality of transport pathways enhancing the passage of said magnetic species to said conductor and effecting electrolysis of said magnetic species.
- 56. The electrode as claimed in claim 55, wherein said plurality of transport pathways have magnetic gradients which enhance the passage of said magnetic species to said conductor.
- 57. An improved fuel cell having two electrodes and a flux of O2 between said two electrodes, wherein one of said two electrodes is the electrode claimed in claim 57, said composite magnetic material thereby enhancing flux of O2 to said one electrode.
- 58. A system, comprising:
a first electrolyte species having a first magnetic susceptibility; a second electrolyte species having a second magnetic susceptibility; and means for preferentially channeling, from a first region to a second region, said first electrolyte species having a first magnetic susceptibility, as compared with said second electrolyte species having a second magnetic susceptibility, wherein said means for preferentially channeling comprises a first material having a first magnetism forming a composite with a second material having a second magnetism, said second material comprising an ion exchange polymer; wherein said composite contains magnetic gradients that cause said first electrolyte species to pass through said second material at a greater rate than said second electrolyte species.
- 59. The system as claimed in claim 58, wherein said first material comprises a paramagnetic species and wherein said second material comprises a diamagnetic species.
- 60. The system as claimed in claim 58, wherein said first material comprises a diamagnetic species having a first magnetic susceptibility and said second material comprises a different diamagnetic species having a second magnetism.
- 61. The system as claimed in claim 58, wherein said first material comprises a paramagnetic species having a first magnetism and said second material comprises a nonmagnetic species.
- 62. The system as claimed in claim 58, wherein said first material comprises a diamagnetic species having a first magnetism and said second material comprises a nonmagnetic species.
- 63. A system for separating first particles and second particles having respective different first and second magnetic susceptibilities, comprising:
a first material having a first magnetism; and a second material having a second magnetism, said second material comprising an ion exchange polymer and working in conjunction with said first material to produce magnetic gradients, said magnetic gradients causing said first particles to pass through said second material at a greater rate than said second particles.
- 64. A composite material for controlling chemical species transport, comprising:
an ion exchanger; and a graded density layer, wherein said ion exchanger is sorbed into said graded density layer.
- 65. The composite material as claimed in claim 64, wherein said composite material has a first side in closer proximity to the source of said chemical species and a second side more distal than said first side to said source of said chemical species, and wherein said graded density layer has a density gradient substantially pointing in the direction from said first side towards said second side.
- 66. The composite material as claimed in claim 64, wherein said composite material has a first side in closer proximity to the source of said chemical species and a second side more distal than said first side to said source of said chemical species, and wherein said graded density layer has a density gradient substantially pointing in the direction from said second side towards said first side.
- 67. A magnetic composite material for controlling transport of magnetic chemical species according to their magnetic susceptibility, comprising:
an ion exchanger; a polymer coated magnetic microbead material; and a graded density layer, wherein said ion exchanger and said polymer coated magnetic microbead material are sorbed into said graded density layer.
- 68. A composite material for controlling chemical species viscous transport, comprising:
an ion exchanger; and a graded viscosity layer, wherein said ion exchanger is sorbed into said graded viscosity layer.
- 69. A magnetic composite material for controlling magnetic chemical species transport and distribution, comprising:
an ion exchanger; a polymer coated magnetic microbead material; and a graded density layer, wherein said ion exchanger and said polymer coated magnetic microbead material are sorbed into said graded density layer forming a gradient in the density of said polymer coated magnetic microbead material substantially perpendicular to a density gradient in said graded density layer.
- 70. A magnetic composite material for controlling magnetic chemical species transport and distribution, comprising:
an ion exchanger; a polymer coated magnetic microbead material; and a graded density layer, wherein said ion exchanger and said polymer coated magnetic microbead material are sorbed into said graded density layer forming a gradient in the density of said polymer coated magnetic microbead material substantially parallel to a density gradient in said graded density layer.
- 71. An ion exchange composite for controlling chemical species transport from a source of the chemical species, comprising:
an ion exchanger; and a laminate graded density layer having a first side and a second side, wherein said ion exchanger is one of sorbed into said graded density layer and cocast on said graded density layer, and said graded density layer and said ion exchanger are contained within said first side and said second side, wherein said first side is in closer proximity to said source of said chemical species and said second side is more distal to said source of said chemical species, and wherein said laminate graded density layer has lower density toward said first side and higher density toward said second side, substantially increasing in density in a direction from said first side toward said second side.
- 72. The ion exchange composite as claimed in claim 71, further comprising a polymer coated magnetic microbead material sorbed into said laminate graded density layer.
- 73. The ion exchange composite as claimed in claim 72, wherein said laminate graded density layer comprises a gradient in the density of said polymer coated magnetic microbead material in a direction substantially perpendicular to the direction from said first side toward said second side.
- 74. The ion exchange composite as claimed in claim 72, wherein said laminate graded density layer comprises a gradient in the density of said polymer coated magnetic microbead material in a direction substantially parallel to the direction from said first side toward said second side.
- 75. An ion exchange composite for controlling chemical species transport from a source of the chemical species, comprising:
an ion exchanger; and a laminate graded density layer having a first side and a second side, wherein said ion exchanger is one of sorbed into said graded density layer and cocast on said graded density layer, and said ion exchanger and said laminate graded density layer are contained within said first side and said second side, wherein said first side is in closer proximity to said source of said chemical species and said second side is more distal to said source of said chemical species, and wherein said laminate graded density layer has higher density toward said first side and lower density toward said second side, substantially decreasing in density in a direction from said first side toward said second side.
- 76. The ion exchange composite as claimed in claim 75, further comprising a polymer coated magnetic microbead material sorbed into said laminate graded density layer.
- 77. The ion exchange composite as claimed in claim 76, wherein said laminate graded density layer comprises a gradient in the density of said polymer coated magnetic microbead material in a direction substantially perpendicular to the direction from said first side toward said second side.
- 78. The ion exchange composite as claimed in claim 76, wherein said laminate graded density layer comprises a gradient in the density of said polymer coated magnetic microbead material in a direction substantially parallel to the direction from said first side toward said second side.
- 79. An apparatus for distinguishing between a first species and a second species having different magnetisms comprising:
a first membrane sensor which preferentially passes said first species over said second species due to said different magnetisms; and a second membrane sensor, which preferentially passes the concentration of said second species over said first species due to said different magnetisms, thereby enabling the measurement of at least said first species.
- 80. The apparatus as claimed in claim 79, wherein said first species comprises a paramagnetic species and said second species comprises a diamagnetic species, and wherein said first membrane sensor is a magnetically modified membrane sensor, and said second membrane sensor is an unmodified membrane sensor, wherein said magnetically modified membrane sensor preferentially enhances the concentration of and allows the detection of said paramagnetic species over said diamagnetic species and said unmodified membrane sensor enhances the concentration of and allows the detection of said diamagnetic species and said paramagnetic species, enabling the measurement of the concentration of at least said paramagnetic species.
- 81. The apparatus as claimed in claim 79, wherein said paramagnetic species is one of O2, NO2, and NO and said diamagnetic species is CO2.
- 82. The apparatus as claimed in claim 79, wherein said first species comprises a paramagnetic species and said second species comprises a nonmagnetic species and said first membrane sensor comprises a magnetically modified membrane sensor, and said second membrane sensor comprises an unmodified membrane sensor, wherein said magnetically modified membrane sensor preferentially enhances the concentration of and allows the detection of said paramagnetic species over said nonmagnetic species and said unmodified membrane sensor enhances the concentration of and allows the detection of said nonmagnetic species and said paramagnetic gaseous species, thereby enabling the measurement of the concentration of at least said paramagnetic species.
- 83. The apparatus as claimed in claim 82, wherein said paramagnetic species is one of O2, NO2, and No.
- 84. The apparatus as claimed in claim 79, wherein said first species comprises a diamagnetic species and said second species comprises a second diamagnetic species and said first membrane sensor comprises a magnetically modified membrane sensor, and said second membrane sensor comprises a differently magnetically modified membrane sensor, wherein said magnetically modified membrane sensor preferentially enhances the concentration of and allows the detection of said first diamagnetic species over said second diamagnetic species and said differently magnetically modified membrane sensor enhances the concentration of and allows the detection of said second paramagnetic species and said diamagnetic species, enabling the measurement of the concentration of at least said first diamagnetic species.
- 85. The apparatus as claimed in claim 84, wherein said first diamagnetic species is CO2.
- 86. The apparatus as claimed in claim 79, wherein said first species comprises a first paramagnetic species and said second species comprises a second paramagnetic species, and said first membrane comprises a magnetically modified membrane sensor, and said second membrane comprises a differently magnetically modified membrane sensor, wherein said magnetically modified membrane sensor preferentially enhances the concentration of and allows the detection of said first paramagnetic species over said second paramagnetic species and said differently magnetically modified membrane sensor enhances the concentration of and allows the detection of said second paramagnetic species and said first paramagnetic species, enabling the measurement of the concentration of at least said first paramagnetic species.
- 87. The apparatus as claimed in claim 86, wherein said first paramagnetic species is one of O2, NO2, and NO.
- 88. A apparatus as claimed in claim 79, wherein said first species comprises a diamagnetic species and said second species comprises a nonmagnetic species, and said first membrane sensor comprises a magnetically modified membrane sensor, and said second membrane sensor comprises an unmodified membrane sensor, wherein said magnetically modified membrane sensor preferentially enhances the concentration of and allows the detection of said diamagnetic species over said nonmagnetic species and said unmodified membrane sensor enhances the concentration of and allows the detection of said nonmagnetic species and said diamagnetic species, enabling the measurement of the concentration of at least said diamagnetic species.
- 89. The apparatus as claimed in claim 88, wherein said diamagnetic species is CO2.
- 90. A flux switch to regulate the flow of a redox species, comprising:
an electrode; a coating on said electrode, wherein said coating is formed from a composite comprising: a magnetic microbead material having an aligned surface magnetic field; an ion exchange polymer; and an electro-active polymer in which a first redox form is paramagnetic and a second redox form is diamagnetic, wherein said flux switch is actuated by electrolyzing said electro-active polymer from said first redox form ordered in said magnetic field to said second redox form disordered in said magnetic field.
- 91. The flux switch as claimed in claim 90, wherein said magnetic microbead material further comprises organo-Fe material.
- 92. The flux switch as claimed in claim 90, wherein said redox species is more readily electrolyzed than said electro-active polymer.
- 93. The flux switch as claimed in claim 90, wherein said electro-active polymer comprises an electro-active liquid crystal with chemical properties susceptible to said magnetic field.
- 94. The flux switch as claimed in claim 90, wherein said electro-active polymer comprises an electro-active liquid crystal with viscosity susceptible to said magnetic field.
- 95. The flux switch as claimed in claim 90, wherein said electro-active polymer comprises an electro-active liquid crystal with phase susceptible to said magnetic field.
- 96. The flux switch as claimed in claim 90, wherein said electro-active polymer comprises poly(vinyl ferrocenium).
- 97. The flux switch as claimed in claim 90, further comprising an externally applied magnetic field, and wherein said magnetic microbead material comprises organo-Fe material.
- 98. A flux switch to regulate the flow of a chemical species, comprising:
an electrode; and a coating on said electrode, wherein said coating is formed from a composite comprising: a non-permanent magnetic microbead material; an ion exchange polymer; and a polymer with magnetic material that is convertible between a paramagnetic form and a diamagnetic form, and wherein said flux switch is actuated by reversibly converting said magnetic material from said paramagnetic form to said diamagnetic form by turning an externally applied magnetic field on or off.
- 99. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein has chemical properties susceptible to an externally applied magnetic field.
- 100. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein has a viscosity susceptible to an externally applied magnetic field.
- 101. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein is substantially in a phase susceptible to an externally applied magnetic field.
- 102. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein comprises an electro-active liquid crystal with chemical properties susceptible to an externally applied magnetic field.
- 103. The flux switch as claimed in claim 98, wherein said externally applied magnetic field is an oscillating magnetic field, said oscillating magnetic field generating surface stirring on said electrode.
- 104. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein comprises a paramagnetic liquid crystal with a viscosity susceptible to an externally applied magnetic field.
- 105. The flux switch as claimed in claim 98, wherein said polymer with magnetic material contained therein is a paramagnetic liquid crystal having a phase susceptible to an externally applied magnetic field.
- 106. The flux switch as claimed in claim 98, wherein said non-permanent magnetic microbead material comprises at least one of Fe and Fe oxide containing material having magnetic properties susceptible to an externally applied magnetic field.
- 107. The flux switch as claimed in claim 98, wherein said non-permanent magnetic microbead material comprises a magnetic material selected from the group consisting of a rare earth metal and a metal oxide with magnetic properties susceptible to an externally applied magnetic field.
- 108. The separator as claimed in claim 1, wherein said first material and said second material are combined to form a magnetic composite material, said magnetic composite material having said plurality of paths therein.
- 109. The separator as claimed in claim 108, wherein said magnetic composite material forms a coating on a substrate.
- 110. The separator as claimed in claim 109, wherein said substrate comprises an electrode.
- 111. A device comprising two electrodes, at least one of said two electrodes having a composite coating thereon, said composite coating comprising:
a first material having a first magnetism; and a second material having a second magnetism, said second material comprising an ion exchange polymer and working in conjunction with said first material to produce magnetic gradients within said composite coating.
- 112. The device of claim 111, wherein said device comprises one of a battery, a flux switch, and a fuel cell.
- 113. The cell according to claim 27, wherein said plurality of paths have an average width in the range of from approximately one nanometer to approximately three micrometers.
Government Interests
[0001] Part of the work performed during the development of this invention utilized U.S. government funds under grants No. CHE92-96013 and No. CHE93-20611 from the National Science Foundation, Chemistry Division, Analytical and Surface Science. The government may have certain rights in this invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09047494 |
Mar 1998 |
US |
Child |
09876035 |
Jun 2001 |
US |