US2008198376A1PendingUtilityA1

Optical sensor with layered plasmon structure for enhanced detection of chemical groups by sers

Assignee: POPONIN VLADIMIRPriority: May 19, 2004Filed: Mar 31, 2008Published: Aug 21, 2008
Est. expiryMay 19, 2024(expired)· nominal 20-yr term from priority
G01N 21/658G02B 5/204G01N 21/65Y10T436/143333G02B 27/10
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Claims

Abstract

An optical sensor and method for use with a visible-light laser excitation beam and a Raman spectroscopy detector, for detecting the presence chemical groups in an analyte applied to the sensor are disclosed. The sensor includes a substrate, a plasmon resonance mirror formed on a sensor surface of the substrate, a plasmon resonance particle layer disposed over the mirror, and an optically transparent dielectric layer about 2-40 nm thick separating the mirror and particle layer. The particle layer is composed of a periodic array of plasmon resonance particles having (i) a coating effective to binding analyte molecules, (ii) substantially uniform particle sizes and shapes in a selected size range between 50-200 nm (ii) a regular periodic particle-to-particle spacing less than the wavelength of the laser excitation beam. The device is capable of detecting analyte with an amplification factor of up to 10 12 -10 14 , allowing detection of single analyte molecules.

Claims

exact text as granted — not AI-modified
1 . An optical sensor for use with a visible-light laser excitation beam, and a Raman spectroscopy detector, for detecting the presence chemical groups in an analyte applied to the sensor, comprising
 (a) a substrate;   (b) a plasmon resonance mirror formed on a sensor surface of the substrate;   (c) disposed over said mirror, a plasmon resonance layer composed of a periodic array of plasmon resonance particles having (i) a coating effective to binding analyte molecules, (ii) substantially uniform particle sizes and shapes in a selected size range between 50-200 nm (ii) a regular periodic particle-to-particle spacing that is less than 700 nm, and   (d) an optically transparent dielectric layer having a selected thickness in the thickness range between 2-40 nm separating said mirror from said particle layer;   wherein irradiation of analyte bound to said particle layer with said laser excitation beam is effective to produce in said detector, a Raman spectrum of said analyte that with an amplification factor of at least 10 10 .   
   
   
       2 . The sensor of  claim 1 , wherein said mirror is a silver, gold or aluminum mirror having mirror thickness between about 30-500 nm. 
   
   
       3 . The sensor of  claim 1 , wherein of said particles have a selected maximum dimension in the size range 50-150 nm. 
   
   
       4 . The sensor of  claim 3 , wherein said particles are formed of silver, gold, or aluminum solid or coated particles. 
   
   
       5 . The sensor of  claim 4 , wherein said mirror and particles are both gold or both silver. 
   
   
       6 . The sensor of  claim 5 , wherein said particles are substantially spherical. 
   
   
       7 . The sensor of  claim 5 , wherein said particles are cylinders or strips. 
   
   
       8 . The sensor of  claim 1 , wherein said particle layer is formed of holes in an expanse of a plasmon metal layer. 
   
   
       9 . The sensor of  claim 6 , wherein said particle layer is formed of a regular array of closed packed plasmon resonance particles having a particle-to-particle spacing of particle dimension plus 0 and 20 nm. 
   
   
       10 . The sensor of  claim 6 , wherein said particle layer includes a periodic array of at least 50 particles in at least one direction. 
   
   
       11 . The sensor of  claim 6 , wherein said particle layer includes a periodic array of at least 50 particles in each of two planar directions. 
   
   
       12 . The sensor of  claim 1 , which includes one or more additional particle layers, each separated from the immediately underlying particle layer by an optical dielectric layer having a thickness of between 2-40 nm. 
   
   
       13 . The sensor of  claim 1 , wherein said substrate is a particle bead having a curved sensor surface. 
   
   
       14 . A method of detecting chemical groups in an analyte with an amplification factor of at least 10 10 , comprising
 (a) binding the analyte to the surface of plasmon resonance particles in a an optical device composed of (a) a substrate; (b) a plasmon resonance mirror formed on a sensor surface of the substrate; (c) disposed over said mirror, a plasmon resonance particle layer composed of a periodic array of such plasmon resonance particles having (i) a coating effective to binding analyte molecules, (ii) substantially uniform particle sizes and shapes in a selected size range between 50-200 nm (ii) a regular periodic particle-to-particle spacing that is less than the wavelength of the laser excitation beam, and (d) an optically transparent dielectric layer having a selected thickness in the thickness range between 2-40 nm separating said mirror from said particle layer;   (b) irradiating analyte molecules bound to said particles with a visible-light laser excitation beam, and   (c) recording the Raman spectrum produced by said irradiating.   
   
   
       15 . The method of  claim 14 , which is effective to produce an amplification factor of at least 10 12 , and is capable of detecting chemical groups in one or a small number of analyte molecules. 
   
   
       16 . The method of  claim 15 , wherein said irradiating is carried out at a beam power level of between 0.1 and 1 mW. 
   
   
       17 . The optical sensor of  claim 1 , which is produced by forming a dielectric layer on a substrate having a plasmon resonance mirror formed on its surface, and depositing a suspension of plasmon resonance particles on the dielectric layer, under conditions in which the particles in the suspension self-assemble to form said plasmon resonance layer. 
   
   
       18 . The optical sensor of  claim 1 , which is produced by forming a dielectric layer on a substrate having a plasmon resonance mirror formed on its surface, forming a self-assembled, close-packed monolayer of plasmon resonance particles on the surface of a liquid, and contacting said monolayer with the dielectric layer on the substrate, to transfer the particle monolayer to the substrate to form said plasmon resonance layer.

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