Claims
- 1. A liquid medium submergible sample preparing arrangement suitable for enhancing detection of different samples comprising at least first or second type of samples, said arrangement comprising:
a carrier structure including a device for controllable generation of a magnetic field through influence of a control signal to attract at least part of said at least first and second type of samples towards specific locations on said carrier when connected to a first control signal and to repel at least one of said first or second type of samples when connected to a second control signal.
- 2. The arrangement as recited in claim 1, wherein said device is a magnetically active material.
- 3. The arrangement as recited in claim 1, wherein said device is made of an electrically conducting material.
- 4. The arrangement as recited in claim 1, wherein said device is made of aluminum.
- 5. The arrangement as recited in claim 1, wherein each device, through a conductor, is applied a current of different strength.
- 6. The arrangement as recited in claim 1, wherein said device is a coil.
- 7. The arrangement as recited in claim 3, wherein a current amplitude and the number of windings in the coil are proportional to the strength of the magnetic field.
- 8. The arrangement as recited in claim 1, further comprising a cavity provided in the carrier structure provided as a substrate.
- 9. The arrangement as recited in claim 8, further comprising a magnetic lid for closing said cavity.
- 10. The arrangement as recited in claim 9, wherein said bead is directed onto a cavity using external magnets that create magnetic fields counteracting the field created by the material deposited around each cavity.
- 11. The arrangement as recited in claim 9, wherein said lid is a micro-bead introduced in said liquid medium.
- 12. The arrangement as recited in claim 1, wherein said particle is attracted to a predetermined cavity when the coil of said cavity is energized by electric current to produce magnetic field of spatial attraction.
- 13. The arrangement as recited in claim 12, wherein before sealing off the cavity, smaller magnetic particles are attracted into the cavity.
- 14. The arrangement as recited in claim 1, wherein said sample is a magnetic particle covered with appropriate chemicals.
- 15. The arrangement as recited in claim 14, wherein said capping is detected by detecting the change in inductance in the control circuit, which produces the attractive magnetic field, whereby the bead acts as a magnetic yoke in a transformer, increasing the inductance.
- 16. The arrangement as recited in claim 1, further comprising means for detection of changes of inductance when a magnetic particle passes through the opening into or out of a cavity.
- 17. The arrangement as recited in claim 16, wherein said detection is determined using the direction of externally controlled magnetic field by one of (1) changing the direction of the electric current flowing through a coil and (2) flipping an external magnetic.
- 18. The arrangement as recited in claim 16, wherein said particle contains particular molecular coating, which reacts with the liquid in that cavity or with the coating adsorbed on the walls of the cavity.
- 19. The arrangement as recited in claim 8, wherein said substrate is made of silicon, Si, or of Si-compound, such as Si-oxide Si-nitride or Si-carbide, or combinations thereof, or a suitable polymer, such as polyethylene, polyethylene glycol, polyethylene oxide, fluorine containing a polymer (PTFE BTeflon), or silicon containing a polymer.
- 20. The arrangement as recited in claim 1, further comprising a carrier substrate.
- 21. The arrangement as recited in claim 1, further comprising a member for generating acoustic waves and said device on one of (1) a substrate and (2) a carrier.
- 22. The arrangement as recited in claim 21, wherein said device and the member for generating acoustic waves are covered with an insulating layer constituting said carrier.
- 23. The arrangement as recited in claim 21, wherein, on the insulating layer, a combination of receptor-bead of a magnetizable material is attached.
- 24. The arrangement as recited in claim 23, wherein a sample is provided with a magnetic portion attractive toward the receptor.
- 25. The arrangement as recited in claim 24, wherein said combination of receptor-bead attenuates the acoustic wave stronger than receptors attached to the insulating layer.
- 26. The arrangement as recited in claim 21, wherein said surface of the insulating layer is inert to receptors, and the receptor-bead combination is attached to the surface by magnetic forces acting on the bead.
- 27. The arrangement as recited in claim 24, further comprising a matrix of interdigitated electrodes, whereby a certain number of electrode pairs constitute a single site and a capacitor.
- 28. The arrangement as recited in claim 27, wherein each site of the matrix is prepared differently, by using different agents, and by directing beads, with specific molecules attached to them, to said sites using magnetic field, or withdrawing particles from these sites, the dielectric constant of a layer close to the surface is perturbed and large changes of the capacitance of the device, compared to attachment of only a molecule, is detected.
- 29. A method for analyzing different samples in an analysis arrangement in a fluid medium, said samples being provided with magnetic members, the method comprising:
providing an arrangement comprising a carrier structure, a testing section on said carrier structure provided with a magnetic field generator upon reception of a control signal, wherein said testing section is provided with a test material reactive to at least one type of said samples; and attracting said different samples to said testing section by generating a magnetic attraction force, and after reaction, repelling samples not being of said one type.
- 30. The method as recited in claim 29, said generator being applied a current of different strength.
- 31. The method as recited in claim 30, wherein said arrangement is provided with a cavity in a substrate.
- 32. The method as recited in claim 31, further comprising arranging a magnetic lid for closing said cavity.
- 33. The method as recited in claim 32, further comprising directing said bead onto a cavity using external magnets that create magnetic fields counteracting the field created by the material deposited around each cavity.
- 34. The method as recited in claim 29, further comprising attracting smaller magnetic particles into the cavity before sealing off the cavity.
- 35. The method as recited in claim 29, wherein said sample is a magnetic particle covered with an appropriate chemical.
- 36. The method as recited in claim 31, further comprising detecting changes of inductance when a magnetic particle passes through the opening into or out of a cavity.
- 37. The method as recited in claim 36, further comprising determining said indication using the direction of externally controlled magnetic field by one of (1) changing the direction of the electric current flowing through a coil and (2) flipping an external magnetic.
- 38. The method as recited in claim 31, wherein given a known number of samples in each cavity and a density of respective coatings, quantitative data on the number of reaction between the coating on a wall of the cavity and the coating on a small sample is obtained by counting the number of samples.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation patent application of International Application No. PCT/SE01/01799 filed 23 Aug. 2001 which was published in English pursuant to Article 21(2) of the Patent Cooperation Treaty, and which claims priority to Swedish Application No. 0002990-0 filed 23 Aug. 2000 and to U.S. Provisional Application No. 60/228,015 filed 24 Aug. 2000. Said applications are expressly incorporated herein by reference in their entireties.