CLEANING FLUIDS AND METHODS OF CLEANING MICROFLUIDIC CHANNELS
Cleaning fluids and methods for cleaning microfluidic channels are disclosed. The cleaning fluid includes surfactant coated magnetic particles, and the cleaning fluid may be guided into, through and out of the channels by using a magnetic field.
1 . A method for cleaning a microfluidic channel, the method comprising:
introducing a cleaning fluid to an opening of the microfluidic channel, the cleaning fluid comprising surfactant coated magnetic nanoparticles having a bilayer of amphiphilic molecules comprising:
a first layer of amphiphilic molecules with hydrophilic ends disposed towards a magnetic core of the nanoparticles and lipophilic ends disposed away from the magnetic core; and
a second layer of amphiphilic molecules with lipophilic ends disposed adjacent the lipophilic ends of the first layer and hydrophilic ends disposed away from the first layer;
applying a magnetic field adjacent the microfluidic channel; and
leading the cleaning fluid through the microfluidic channel with the magnetic field.
2 . (canceled)
3 . The method of claim 1 , wherein introducing comprises introducing a cleaning fluid to a microfluidic channel having a longitudinal direction extending through the microfluidic channel from the opening, and the method further comprises positioning a magnet away from the cleaning fluid in the longitudinal direction to pull the cleaning fluid towards the magnet longitudinally through the microfluidic channel.
4 . (canceled)
5 . The method of claim 1 , wherein introducing comprises introducing the cleaning fluid to a microfluidic channel having a cross-sectional dimension of about 0.8×10 6 nm to about 1.0×10 6 nm, and the introducing a cleaning fluid having surfactant coated magnetic nanoparticles with a cross-sectional dimension of about 5.6 nm to about 8.8 nm.
6 .- 7 . (canceled)
8 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing magnetic nanoparticles having ferromagnetic cores and a bilayer having amphiphilic molecules comprise comprising at least one of fatty acids and fatty acid derivatives.
9 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing surfactant coated magnetic nanoparticles having magnetic cores of iron, an iron alloy, cobalt, a cobalt alloy, nickel, a nickel alloy, manganese, a manganese alloy, neodymium, a neodymium alloy, gadolinium, a gadolinium alloy, europium, a europium alloy or any combination thereof.
10 . The method of claim 8 , wherein introducing a cleaning fluid comprises introducing surfactant coated magnetic nanoparticles having magnetic cores of FeO, Fe 2 O 3 , Fe 3 O 4 , or any combination thereof.
11 .- 12 . (canceled)
13 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing surfactant coated magnetic nanoparticles having amphiphilic molecules comprising a moiety of oleic acid, a moiety of stearic acid, a moiety of linoleic acid, a moiety of vaccenic acid, or any combination thereof.
14 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing surfactant coated magnetic nanoparticles having amphiphilic molecules comprise comprising sodium oleate.
15 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing an aqueous solution, wherein the amphiphilic molecules comprise sodium oleate, and the magnetic nanoparticles are FeO, Fe 2 O 3 , or any combination thereof.
16 . The method of claim 1 , wherein introducing a cleaning fluid comprises introducing nanoparticles of iron oxides coated with sodium oleate.
17 .- 34 . (canceled)
35 . A cleaning fluid comprising magnetic nanoparticles coated with surfactant, wherein the surfactant comprises a bilayer of amphiphilic molecules comprising:
a first layer of amphiphilic molecules with hydrophilic ends disposed towards a core of the magnetic nanoparticles and lipophilic ends disposed away from the core; and
a second layer of amphiphilic molecules with lipophilic ends disposed adjacent to the lipophilic ends of the first layer and hydrophilic ends disposed away from the first layer.
36 .- 37 . (canceled)
38 . The cleaning fluid of claim 35 , wherein the magnetic nanoparticles are ferromagnetic.
39 . The cleaning fluid of claim 35 , wherein the magnetic nanoparticles comprise iron, an iron alloy, cobalt, a cobalt alloy, nickel, a nickel alloy, manganese, a manganese alloy, neodymium, a neodymium alloy, gadolinium, a gadolinium alloy, europium, a europium alloy or any combination thereof.
40 . The cleaning fluid of claim 35 , wherein the magnetic nanoparticles are FeO, Fe 2 O 3 , Fe 3 O 4 , or any combination thereof.
41 . The cleaning fluid of claim 35 , wherein the surfactant comprises a fatty acid, a fatty acid derivative, or any combination thereof.
42 . The cleaning fluid of claim 41 , wherein the fatty acid derivative comprises a salt, a hydroxy acid , an amide, an ester, an ether, or any combination thereof.
43 . The cleaning fluid of claim 35 , wherein the surfactant is selected from the group consisting of a monounsaturated fatty acid moiety, a C 18 fatty acid moiety, an oleic acid moiety, a of stearic acid moiety, a of linoleic acid moiety, a of vaccenic acid moiety.
44 .- 45 . (canceled)
46 . The cleaning fluid of claim 35 , wherein the surfactant comprises sodium oleate.
47 . The cleaning fluid of claim 35 , wherein the surfactant coated magnetic nanoparticles have a cross-sectional dimension of about 5.6 nm to about 8.8 nm.
48 . The cleaning fluid of claim 35 , wherein the cleaning fluid is an aqueous solution, the surfactant comprises sodium oleate, and the magnetic nanoparticles are FeO, Fe 2 O 3 , or any combination thereof.
49 . A method for producing a cleaning fluid, the method comprising:
coating nanoparticles of a magnetic material with surfactant to produce coated nanoparticles by forming a bilayer of amphiphilic molecules about a nanoparticle core, the bilayer comprising:
a first layer of amphiphilic molecules with hydrophilic ends disposed towards the core and lipophilic ends disposed away from the core;
a second layer of amphiphilic molecules with lipophilic ends disposed adjacent the lipophilic ends of the first layer and hydrophilic ends disposed away from the first layer; and
dispersing the coated nanoparticles in a liquid carrier.
50 .- 51 . (canceled)
52 . The method of claim 49 , wherein coating nanoparticles comprises coating ferromagnetic nanoparticles.
53 . The method of claim 49 , wherein coating nanoparticles comprises coating magnetic nanoparticles comprising iron, iron alloys, cobalt, cobalt alloys, nickel, nickel alloys, manganese, manganese alloys, neodymium, neodymium alloys, gadolinium, gadolinium alloys, europium, europium alloys or any combination thereof.
54 . The method of claim 49 , wherein coating nanoparticles comprises coating FeO, Fe 2 O 3 , Fe 3 O 4 , or any combination thereof.
55 . The method of claim 49 , wherein coating nanoparticles comprises coating with a surfactant comprising a fatty acid, a fatty acid derivative, or any combination thereof.
56 . (canceled)
57 . The method of claim 49 , wherein coating nanoparticles comprises coating with a surfactant comprising a moiety of oleic acid, stearic acid, linoleic acid, vaccenic acid, or any combination thereof.
58 . The method of claim 49 , wherein coating nanoparticles comprises coating with a surfactant comprising sodium oleate.
59 . (canceled)
60 . The method of claim 49 , wherein coating nanoparticles comprises coating iron oxides with sodium oleate.
61 .- 62 . (canceled)