Method and apparatus for chemical detection
Provided herein is a sensing apparatus comprising, at least one LSPR light source, at least one detector, and at least one sensor for LSPR detection of a target chemical. The sensor comprises a substantially transparent, porous membrane having nanoparticles immobilized on the surface of its pores, the nanoparticles being functionalized with one or more capture molecules.
1. A sensing apparatus comprising:
i. at least one LSPR light source;
ii. at least one detector; and
iii. at least one sensor for LSPR detection of a target chemical located between the detector and the light source, the sensor comprising a substantially optically transparent, porous membrane, the membrane comprising nanoparticles immobilized on the surface of its pores, the nanoparticles being functionalized with one or more capture molecules
wherein the detector detects light transmitted through the sensor.
2. The sensing apparatus of claim 1 wherein the membrane comprises anodized aluminum oxide.
3. The sensing apparatus of claim 1 wherein the pores are between 10 nm and 1000 nm in diameter.
4. The sensing apparatus of claim 1 wherein the nanoparticles are 1 to 1000 nm in diameter.
5. The sensing apparatus of claim 1 wherein the nanoparticles are selected from the group consisting of gold, silver, platinum, copper, gold-coated silver, silver-coated gold nanoparticles, and metal-coated non-metal nanoparticles.
6. The sensing apparatus of claim 1 wherein the nanoparticles are gold nanoparticles.
7. The sensing apparatus of claim 1 wherein the nanoparticle morphology is selected from the group consisting of spheres, rods, urchins, stars, rice, plates, decahedrons, hexagons, prisms, shells, platelets, triangles, cubes, cages and bipyramids.
8. The sensing apparatus of claim 1 wherein the nanoparticles are further functionalized with blocking molecules.
9. The sensing apparatus of claim 1 wherein the one or more capture molecules are selected from the group consisting of aptamers, antibodies, DNA, or polymers.
10. The sensing apparatus of claim 1 comprising two or more nanoparticle types having distinct LSPR peaks.
11. The sensing apparatus of claim 1 further comprising an LSPR shift enhancer.
12. The sensing apparatus of claim 1 further comprising an LSPR signal enhancer.
13. The sensing apparatus of claim 1 wherein the sensor is within a fluidic cartridge comprising a fluid inlet and a fluid outlet.
14. The sensing apparatus of claim 1 wherein the fluidic cartridge comprises multiple sensors.