IP Library Granted Patent US 9,702,873
Granted Patent B2
US 9,702,873 · App. 13/964,990 · Granted Jul 11, 2017

System for trapping, interacting and modifying single protein molecules using a double-nanohole structure

Inventors: Reuven Gordon (Victoria, CA); Yuanjie Pang (Ann Arbor, MI)
G01N33/566G01N21/35G01N21/64G01N21/65
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Quick Facts
Patent No.
US 9,702,873
App. No.
13/964,990
Granted
Jul 11, 2017
Kind
B2
Abstract

Molecules or particle having a hydrodynamic radius as small as 3.5 nm can be trapped using a double-nanohole structure defined in a metal film or other metallic layer. Application of a suitable optical radiation flux to the double-nanohole structure can provide a folding and/or binding of protein molecules that can be identified based on changes in optical transmission. Varying nanohole transmissions can thus be associated with trapping, binding and unfolding of biological particles. The double-nanohole defines cusps, but such cusps can be defined in other ways as well.

Claims (42)

1. A sensor, comprising:

an optical trap including an aperture defining a pair of cusps; and

an optical system configured to provide an indication of an optical trapping by the optical trap based on optical power received from the optical trap.

2. The sensor of claim 1 , wherein the optical system is configured to provide the indication based on a variation in optical transmittance associated with trapping.

3. The sensor of claim 1 , wherein the indication of the optical trapping is associated with a trapped particle size, a concentration of trapped particles, or both.

4. The sensor of claim 1 , wherein the optical system is configured to provide an indication of at least two trapping states.

5. The sensor of claim 1 , further comprising a chamber configured to receive a sample, wherein the optical trap is coupled to the chamber so as to be exposed to the received sample.

6. The sensor of claim 5 , wherein the pair of cusps are defined by a double-nanohole.

7. The sensor of claim 6 , wherein the double-nanohole is defined in a conductive layer that is situated to be exposed to an interior of the chamber.

8. The sensor of claim 5 , wherein the chamber is a flow through chamber.

9. The sensor of claim 1 , wherein the pair of cusps is defined in a conductive layer by opposing apertures.

10. The sensor of claim 9 , wherein the apertures are circular, arcuate, or elliptical.

11. A method for optically trapping a portion of a sample, comprising:

applying the sample to a plasmonic tip pair defined by the pair of cusps of the optical trap of claim 1 , the plasmonic tip pair having a predetermined tip gap; and

exposing the sample and the plasmonic tip pair to optical radiation polarized parallel to an axis extending between the tip pair so as to optically trap at least a portion of the sample.

12. A sensor, comprising:

an optical trap that includes a pair of cusps defined in a conductive layer; and

an optical system configured to provide an indication of an optical trapping by the optical trap based on optical power received from the optical trap.

13. A sensor, comprising:

an optical trap including a double nanohole assembly; and

an optical system configured to provide an indication of an optical trapping by the optical trap based on optical power received from the optical trap.

14. The sensor of claim 13 , wherein the optical system includes an optical radiation source configured to irradiate the nanohole assembly.

15. The sensor of claim 14 , wherein the optical system includes an optical radiation detector configured to provide the indication of trapping based on detected optical power.

16. The sensor of claim 14 , wherein the double nanohole assembly defines a first conductive tip and a second conductive tip having a tip separation in the range of about 10 nm to about 500 nm.

17. The sensor of claim 16 , wherein the optical system includes a waveplate configured to provide a state of polarization of the optical radiation from the optical radiation source that is aligned with a gap between the first and second conductive tips.

18. The sensor of claim 16 , wherein the double nanohole assembly includes two nanoholes defined in a plasmonic layer, and the tips are defined by the two nanoholes in the plasmonic layer.

19. The sensor of claim 18 , wherein the plasmonic layer is a metal or doped dielectric layer.

20. A method of producing a trapping state at an optical trap, comprising:

receiving a specimen at the double nanohole assembly of the optical trap of claim 13 ; and

applying optical radiation to the optical trap so as to produce the trapping state at the double nanohole assembly.

21. The method of claim 20 , wherein, based on optical radiation transmitted by the optical trap, identifying the trapping state.

22. The method of claim 20 , further comprising providing a reagent selected so as to modify a property of the specimen at the double cusp assembly.

23. The method of claim 21 , further comprising identifying at least two trapping states based on the transmitted optical radiation.

24. The method of claim 21 , wherein the double nanohole assembly is defined in a conductive layer by opposing apertures.

25. The method of claim 24 , wherein the apertures are triangular, rectangular, polygonal, circular, arcuate, or elliptical.

26. The method of claim 25 , wherein the apertures have different sizes or shapes.

27. A method for translating an optically trapped particle, comprising:

optically trapping a particle at the double nanohole assembly of the optical trap of claim 13 ; and

translating the double nanohole assembly with the optically trapped particle.

28. The method of claim 27 , further comprising forming a combined product with the translated trapped particle and one or more binding molecules.

29. The method of claim 27 , further comprising monitoring the translated trapped particle.

30. The method of claim 27 , wherein the double nanohole assembly is situated proximate an optical fiber, and further comprising detecting a characteristic of the trapped particle based on optical radiation coupled into the optical fiber.

Continuity (2)
Provisional Application 61682642 · Aug 13, 2012
Related Publication 20140045277A1 · Feb 13, 2014