Claims
- 1. A detector, for determining presence, number, length concentration, position and/or motion of at least one particle present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, the detector comprising:
(a) a capacitor, comprising a first conductive plate and a second conductive plate defining an inter-plate volume having a longitudinal axis; and (b) at least two electrical contacts, connecting each of said first and second conductive plates to a capacitance measuring device; said capacitor being characterized by at least one variable parameter so as to allow determination and/or monitoring of presence, number, length concentration, position and/or at least one motion characteristic of the at least one particle placed within said inter-plate volume of said capacitor.
- 2. The detector of claim 1, wherein the at least one particle is dissolved in the fluid.
- 3. The detector of claim 1, wherein the at least one particle is dispersed in the fluid.
- 4. The detector of claim 1, wherein said capacitance measuring device is selected from the group consisting of a capacitance meter and a capacitance bridge.
- 5. The detector of claim 1, wherein said at least one variable parameter is selected from the group consisting of a variable dielectric coefficient and a variable cross-sectional area said cross-sectional area being perpendicular to said longitudinal axis.
- 6. The detector of claim 1, wherein the at least one particle is self-conductive.
- 7. The detector of claim 1, wherein the at least one particle is linkable to at least one conductive particle.
- 8. The detector of claim 1, wherein the at least one particle is selected from the group consisting of a cell, a bacterium, a biological molecule, an organic molecule and a polymer.
- 9. The detector of claim 1, wherein said determination and/or monitoring is at a nanometer resolution.
- 10. The detector of claim 1, wherein said capacitance measuring device is configured and designed to allow measuring of capacitance at a 1×10−18 F resolution.
- 11. The detector of claim 1, wherein said determination and/or monitoring is in a sub-microsecond time scales.
- 12. The detector of claim 1, wherein said capacitance measuring device is operable to measure a time dependence of a change in capacitance.
- 13. The detector of claim 1, wherein said first and second conductive plates engage opposite inner-faces of a capillary.
- 14. The detector of claim 1, wherein said first and second conductive plates engage opposite outer-faces of a capillary.
- 15. The detector of claim 1, wherein said capillary has a profile selected from the group consisting of a polygonal profile a circular profile an ellipsoidal profile and an irregular pattern profile.
- 16. The detector of claim 13, wherein said capillary is characterized by a variable cross section at any position along said longitudinal axis.
- 17. The detector of claim 1, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis, is constant along said longitudinal axis.
- 18. The detector of claim 1, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis varies along said longitudinal axis.
- 19. The detector of claim 1, wherein said at least one motion characteristic is selected from the group consisting of velocity and acceleration.
- 20. The detector of claim 1, further comprising at least one additional conductive layer interposted between said first and said second conductive layers, said at least one additional conductive layer having a surface area substantially smaller than a surface area of both said first and said second conductive layers.
- 21. The detector of claim 20, further comprising at least one electrical isolating layer, covering said at least one additional conductive layer.
- 22. The detector of claim 20, wherein at least one additional conductive layer is grounded.
- 23. The detector of claim 20, wherein said at least one additional conductive layer is a made of Gold.
- 24. The detector of claim 21, wherein said electrical isolating layer is a made of quartz.
- 25. The detector of claim 1, wherein said first and said second conductive plates are made of a material selected from the group consisting of Gold and Aluminium.
- 26. A motion detection method comprising placing at least one at least one particle, present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, within an inter-plate volume of a capacitor being characterized by at least one variable parameter, and determining and/or monitoring presence, number, length concentration, longitudinal position and/or at least one motion characteristic of said at least one conductive particle, by determining a change in capacitance of said capacitor.
- 27. The motion detection method of claim 26, wherein the at least one particle is dissolved in the fluid.
- 28. The motion detection method of claim 26, wherein the at least one particle is dispersed in the fluid.
- 29. The motion detection method of claim 26, wherein said change in capacitance comprises time dependent change in capacitance.
- 30. The motion detection method of claim 26, wherein said at least one variable parameter is selected from the group consisting of a variable dielectric coefficient and a variable cross-sectional area, said cross-sectional area being perpendicular to a longitudinal axis defined in an inter-plate volume of said capacitor.
- 31. The motion detection method of claim 26, wherein each of said at least one conductive particle is linkable to a particle selected from the group consisting of a cell, a bacterium, a biological molecule, an organic molecule and a polymer.
- 32. The motion detection method of claim 26, wherein said determining is at a nanometer resolution.
- 33. The motion detection method of claim 26, wherein said monitoring is at a sub-microsecond time scales.
- 34. The motion detection method of claim 26, wherein said at least one motion characteristic is selected from the group consisting of velocity and acceleration.
- 35. A particle presence, number, length or concentration detector comprising:
(a) a capacitor, comprising a first conductive plate and a second conductive plate substantially parallel to said first conductive plate, said first and second conductive plates defining an inter-plate volume having a longitudinal axis; and (b) at least two electrical contacts, connecting each of said first and second conductive plates to a capacitance measuring device; said capacitor being designed and constructed for allowing a determination of a presence, number or concentration of particles placed within said inter-plate volume of said capacitor, said particles being present in a fluid and having a dielectric coefficient other than a dielectric coefficient of said fluid.
- 36. The particles presence, number, length or concentration detector of claim 35, wherein said particles are dissolved in the fluid.
- 37. The particles presence, number, length or concentration detector of claim 35, wherein said particles are dispersed in the fluid.
- 38. The particles presence, number, length or concentration detector of claim 35, wherein said capacitance measuring device is selected from the group consisting of a capacitance meter and a capacitance bridge.
- 39. The particles presence, number, length or concentration detector of claim 35, wherein said particles are selected from the group consisting of cells, bacteria biological molecules, organic molecules and polymers.
- 40. The particles presence, number, length or concentration detector of claim 35, wherein each of said particles are linkable to at least one conductive particle.
- 41. The particles presence, number, length or concentration detector of claim 35, wherein said particles are self-conductive.
- 42. The particles presence, number, length or concentration detector of claim 35, wherein said determination is at a nanometer resolution.
- 43. The particles presence, number, length or concentration detector of claim 35, wherein said capacitance measuring device is configured and designed to allow measuring of capacitance at a 1×10−18 F resolution.
- 44. The particles presence, number, length or concentration detector of claim 35, wherein said first and second conductive plates engage opposite inner-faces of a capillary.
- 45. The particles presence, number, length or concentration detector of claim 35, wherein said first and second conductive plates engage opposite outer-faces of a capillary.
- 46. The particles presence, number, length or concentration detector of claim 44, wherein said capillary has a profile selected from the group consisting of a polygonal profile a circular profile an ellipsoidal profile and an irregular pattern profile.
- 47. The particles presence, number, length or concentration detector of claim 35, wherein said first and said second conductive plates are made of a material selected from the group consisting of Gold and Aluminium.
- 48. A method of determining the presence, number, length or concentration of particles present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, the method comprising placing the particles and the fluid in an inter-plate volume of a parallel plates capacitor and determining the presence, number, length or concentration of the particles by determining a change in capacitance of said parallel plates capacitor.
- 49. The method of claim 48, wherein said particles are dissolved in the fluid.
- 50. The method of claim 48, wherein said particles are dispersed in the fluid.
- 51. The method of claim 48, wherein said particles are selected from the group consisting of a cell, a bacterium, a biological molecule, an organic molecule and a polymer.
- 52. The method of claim 48, wherein each of said particles is linkable to at least one conductive particle.
- 53. The method of claim 48, wherein said particles comprise self-conductive particles.
- 54. The method of claim 48, wherein said determining is at a nanometer resolution.
- 55. A method of manufacturing a motion detector for detecting at least one particle present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, the method comprising the steps of;
positioning a first conductive plate and a second conductive plate such that said second conductive plate is spaced apart from said first conductive plate, so as to define an inter-plate volume having a longitudinal axis; and providing a at least two electrical contacts, connecting each of said first and said second conductive plates to a capacitance measuring device.
- 56. The method of claim 35, wherein said particles are dissolved in the fluid.
- 57. The method of claim 35, wherein said particles are dispersed in the fluid.
- 58. The method of claim 55, wherein said capacitance measuring device is selected from the group consisting of a capacitance meter and a capacitance bridge.
- 59. The method of claim 55, wherein said capacitance measuring device is configured and designed to allow measuring of capacitance at a 1×10−18 F resolution.
- 60. The method of claim 55, wherein said capacitance measuring device is operable to measure a tune dependence of a change in capacitance.
- 61. The method of claim 55, further comprising providing a dielectric material between said first conductive plate and said second conductive plate, said dielectric material having a dielectric coefficient.
- 62. The method of claim 61, wherein said dielectric coefficient is constant.
- 63. The method of claim 61, wherein said dielectric coefficient varies along said longitudinal axis.
- 64. The method of claim 55, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis, is constant along said longitudinal axis.
- 65. The method of claim 55, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis, varies along said longitudinal axis.
- 66. The method of claim 55, wherein said step of positioning said first conductive plate and said second conductive plate comprises:
(a) providing a pullable tube having a profile; (b) pulling said tube at a controlled rate so as to provide a capillary having a predetermined maximal diameter; and (c) applying said first and said second conductive plates on opposite faces of said capillary.
- 67. The method of claim 66, wherein said opposite faces are selected from the group consisting of opposite inner-faces and opposite outer-faces.
- 68. The method of claim 66, wherein said step of applying is effected from a procedure selected from the group consisting of evaporation, lift-off shadow-evaporation, nano-manipulation and focused ion milling.
- 69. The method of claim 68, wherein said nano-manipulation is done by atomic force microscope.
- 70. The method of claim 66, wherein said profile is selected from the group consisting of a polygonal profile a circular profile an ellipsoidal profile and an irregular pattern profile.
- 71. The method of claim 66, wherein said step of pulling said tube substantially retain said profile.
- 72. The method of claim 66, wherein said step of pulling said tube is done by a micropipette puller.
- 73. The method of claim 72, wherein said micropipette puller is a laser based micropipette puller.
- 74. The method of claim 73, wherein said laser is a CO2 laser.
- 75. The method of claim 66, further comprising the step of varying a diameter of said profile along said longitudinal axis, during or subsequent to said step of pulling said tube.
- 76. The method of claim 66, further comprising the steps of applying at least one additional conductive layer onto said capillary, and covering said at least one additional conductive layer by an electrical isolating layer, prior to said step (c).
- 77. The method of claim 76, further comprising grounding said at least one additional conductive layer.
- 78. The method of claim 76, wherein said at least one additional conductive layer is a made of a material selected from the group consisting of Gold and Aluminum.
- 79. The method of claim 55, wherein sad first and said second conductive plates are made of a material selected from the group consisting of Gold and Aluminum.
- 80. The method of claim 76, wherein said covering is effected from a procedure selected from the group consisting of evaporation, lift-off, shadow-evaporation, nano-manipulation and focused ion milling.
- 81. The method of claim 80, wherein said nano-manipulation is done by atomic force microscope.
- 82. The method of claim 76, wherein said electrical isolating layer is a made of quartz.
- 83. A method of manufacturing a motion detector for detecting at least one particle present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, the method comprising the steps of:
(a) etching a non conductive substrate so as to provide at channel having walls; (b) coating said walls by a conductive material so as to provide so as to provide a first conductive plate and a second conductive plate, said second conductive plate being spaced apart from said first conductive plate, so as to define an inter-plate volume having a longitudinal axis; and (c) providing at least two electrical contacts, connecting each of said first and said second conductive plates to a capacitance measuring device.
- 84. The method of claim 83, wherein said capacitance measuring device is selected from the group consisting of a capacitance meter and a capacitance bridge.
- 85. The method of claim 83, wherein said capacitance measuring device is configured and designed to allow measuring of capacitance at a 1×10−18 F resolution.
- 86. The method of claim 83, wherein said capacitance measuring device is operable to measure a time dependence of a change in capacitance.
- 87. The method of claim 83, further comprising providing a dielectric material between said first conductive plate and said second conductive plate, said dielectric material having a dielectric coefficient.
- 88. The method of claim 87, wherein said dielectric coefficient is constant.
- 89. The method of claim 87, wherein said dielectric coefficient varies along said longitudinal axis.
- 90. The method of claim 83, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis, is constant along said longitudinal axis.
- 91. The method of claim 83, wherein a transverse dimension of said first and said second conductive plates, with respect to said longitudinal axis, varies along said longitudinal axis.
- 92. The method of claim 83, wherein said non conductive substrate is made of poly-Si.
- 93. The method of claim 83, further comprising positioning said non conductive substrate onto a conductive substrate, prior to said step of etching.
- 94. The method of claim 93, wherein said conductive substrate is a doped Si wafer.
- 95. The method of claim 93, further comprising grounding said conductive substrate.
- 96. The method of claim 83, wherein said step of providing said at least two electrical contacts is done by patterning and evaporation.
- 97. The method of claim 96, wherein said patterning is effected by a procedure selected from the group consisting of photolithography and lift-off technique.
- 98. The method of claim 83, wherein said electrical contacts comprise bonding pads.
- 99. The method of claim 83, further comprising etching at least two reservoirs in said non conductive substrate prior to said step of coating.
- 100. The method of claim 99, further comprising covering said first and said second conductive plates by a non conductive slip having at least two holed so as to allow liquid passage therethrough into said at least two reservoirs.
- 101. The method of claim 83, wherein said conductive material is selected from the group consisting of Gold and Aluminium.
- 102. A detector, for determining presence, number, length concentration, position and/or motion of at least one particle present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, the detector comprising:
(a) a variable-width capacitor comprising a first conductive plate and a second conductive plate having a variable distance therebetween and defining an inter-plate volume of a variable-width having a longitudinal axis; and (b) at least two electrical contacts, connecting each of said first and second conductive plates to a capacitance measuring device; said variable-width capacitor being designed and constructed for determination of a longitudinal position and/or monitoring a change of position along said longitudinal axis of a single conductive particle placed within said inter-plate volume of said variable-width capacitor.
- 103. The detector of claim 102, wherein said particles are dissolved in the fluid.
- 104. The detector of claim 102, wherein said particles are dispersed in the fluid.
- 105. The detector of claim 102, wherein said capacitance measuring device is selected from the group consisting of a capacitance meter and a capacitance bridge.
- 106. The detector of claim 102, wherein said single conductive particle is linkable to a particle selected from the group consisting of a cell, a bacterium, a biological molecule, an organic molecule and a polymer.
- 107. The detector of claim 102, wherein said monitoring is at a nanometer resolution.
- 108. The detector of claim 102, wherein said determination is at a nanometer resolution.
- 109. The detector of claim 102, wherein said capacitance measuring device is configured and designed to allow measuring of capacitance at a 1×10−18 F resolution.
- 110. The detector of claim 102, wherein said monitoring is in a sub-microsecond time scales.
- 111. The detector of claim 102, wherein said determination is in a sub-microsecond time scales.
- 112. The detector of claim 102, wherein said capacitance measuring device is operable to measure a time dependence of a change in capacitance.
- 113. The detector of claim 102, wherein said first and second conductive plates engage opposite inner-faces of a capillary.
- 114. The detector of claim 102, wherein said first and second conductive plates engage opposite outer-faces of a capillary.
- 115. The detector of claim 102, wherein said capillary has a profile selected from the group consisting of a polygonal profile a circular profile an ellipsoidal profile and an irregular pattern profile.
- 116. The detector of claim 113, wherein said capillary is characterized by a variable cross section at any position along said longitudinal axis.
- 117. A motion detection method comprising placing at least one particle present in a fluid and having a dielectric coefficient other than a dielectric coefficient of the fluid, within an inter-plate volume of a variable-width capacitor and determining and/or monitoring a longitudinal position and/or at least one motion characteristic of said at least one conductive particle by determining a change in capacitance of said variable-width capacitor.
- 118. The motion detection method of claim 117, wherein said particles are dissolved in the fluid.
- 119. The motion detection method of claim 117, wherein said particles are dispersed in the fluid.
- 120. The motion detection method of claim 117, wherein said change in capacitance comprises time dependent change in capacitance.
- 121. The motion detection method of claim 117, wherein each of said at least one conductive particle is linkable to a particle selected from the group consisting of a cell, a bacterium, a biological molecule, an organic molecule and a polymer.
- 122. The motion detection method of claim 117, wherein said determining a longitudinal position is at a nanometer resolution.
- 123. The motion detection method of claim 117, wherein said determining a motion is in a sub-microsecond time scales.
- 124. The motion detection method of claim 117, wherein said at least one motion characteristic is selected from the group consisting of velocity and acceleration.
- 125. The motion detection method of claim 102, wherein said first and said second conductive plates are made of a material selected from group consisting of Gold and Aluminium.
Parent Case Info
[0001] This application claims the benefit of priority from U.S. Provisional Patent application No. 60/255,138, filed Dec. 14, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60255138 |
Dec 2000 |
US |