Claims
- 1. A method of room temperature synthesis of magnetic metal oxide nanoclusters within a diblock copolymer matrix, comprising the steps of:
a. synthesizing, by ring opening metathesis polymerization technique, a diblock copolymer including a first polymer block and a second polymer block having a predetermined repeat unit ratio m/n of said first and second polymer blocks, b. introducing, at room temperature, at least one metal containing precursor into one of said first and second polymer blocks, thereby forming a copolymer containing said at least one metal, and c. processing said copolymer containing said at least one metal by wet chemical technique to form nanoclusters of said at least one metal oxide within said diblock copolymer.
- 2. The method of claim 1, further comprising the step of: varying said repeat unit ratio m/n to change magnetic properties of said metal oxide nanoclusters.
- 3. The method of claim 1, further comprising the steps of:
in said step (a), synthesizing [NOR]m/[NORCOOH]n said diblock copolymer including said first polymer block of norbornene (NOR) and said second polymer block of norbornene-dicarboxyclic acid (NORCOOH); in said step (b), introducing FeCl3 and CoCl2 precursors into said diblock copolymer to attach FeCl3 and CoCl2 molecules to said second polymer block (NORCOOH) of said [NOR]m/[NORCOOH]n diblock copolymer; and in said step (c), substituting chlorine atoms of said FeCl3 and CoCl2 precursors with oxigene atoms to form mixed metal oxide CoFe2O4 nanoclusters within said [NOR]m/[NORCOOH]n diblock copolymer.
- 4. The method of claim 3, wherein said m/n=400/50.
- 5. The method of claim 3, further comprising the steps of:
in said step (a), synthesizing said diblock copolymer [NOR]m/[NORCOOH]n by said ring opening metathesis of norbornene (NOR) and norbornene trimethylsilane (NORCOOTMS) in presence of a Bis (tricyclohexylphospine) benzylidine rutheniuna (IV) dichloride catalyst, resulting in formation of [NOR]m/[NORCOOTMS]n diblock copolymer solution and precipitating said [NOR]m/[NORCOOTMS]n diblock polymer solution in a mixture of methanol, acetic acid and water to convert said [NOR]m/[NORCOOTMS]n diblock polymer solution into said [NOR]m/[NORCOOH]n diblock copolymer.
- 6. The method of claim 5, further comprising the steps of:
prior to said step (a), dissolving 1 g of norbornene (NOR) in 25 ml of anhydrous tetrahydrofuran (THF) to form a 4% solution of norbornene (NOR) in THF.
- 7. The method of claim 6, further comprising the steps of:
initiating polymerization of said polymer block of norbornene in said solution of norbornene (NOR) in THF by adding 0.75 ml of said Bis (tricyclohexylphospine) benzylidine rutheniuna (IV) dichloride catalyst solution to said solution of norbornene (NOR) in THF.
- 8. The method of claim 7, further comprising the steps of:
in said step (a), adding solution of said norbornene trimethylsilane (NORCOOTMS) to said solution of norbornene (NOR) in THF a predetermined time period after the initiating of the polymerization of said polymer block of norbornene.
- 9. The method of claim 8, wherein said predetermined time period is approximately 1 hour.
- 10. The method of claim 5, further comprising the steps of:
initiating synthesis of said [NOR]m/[NORCOOTMS]n diblock polymer solution by polymerization of said polymer block NORCOOTMS by adding said catalyst solution to said NORCOOTM, and adding norbornene to said NORCOOTMS polymer block a predetermined time period after the initiating of the polymerization of said NORCOOTM polymer block.
- 11. The method of claim 8 further comprising the step of:
terminating said formation of [NOR]m/[NORCOOTMS]n approximately 24 hours after adding said solution of said norbornene trimethylsilane (NORCOOTMS) to said solution of norbornene (NOR) in THF prior to said step of precipitating said [NOR]m/[NORCOOTMS]n diblock polymer solution in said mixture of methanol, acetic acid and water.
- 12. The method of claim 5, further comprising the step of:
drying said [NOR]m/NORCOOH]n diblock copolymer solution under vacuum.
- 13. The method of claim 3, further comprising the steps of:
dissolving said synthesized [NOR]m/[NORCOOH]n diblock copolymer in anhydrous tetrahydrofuran (THF) to form a diblock copolymer solution, and introducing said FeCl3 and CoCl2 precursors into said diblock copolymer solution to form a resulting solution including: [NOR]m/[NORCOOH]n:FeCl3:CoCl2 related each to the other in quantities of 1:25.0:12.5 mole.
- 14. The method of claim 3, further comprising the steps of:
forming solid films from said resulting solution by static casting of said resulting solution.
- 15. The method of claim 14, further comprising the step of:
static casting of said resulting solution over a period of 72 hours.
- 16. The method of claim 14, further comprising the steps of:
in said step (c), washing said formed solid films with NaOH and water to substitute chlorine atoms of said FeCl3 and CoCl2 molecules with oxygen atoms to form nanoclusters of CoFe2O4 within said [NOR]m/[NORCOOH]n diblock copolymer.
- 17. The method of claim 1, further comprising the steps of:
in said step (b), dissolving CoCl2 in tetrahydrofuran (THF) thus forming solution of CoCl2 in THF, dissolving Lithium-trans-2,3-bis (Tert-butylamidomethyl) norborn-5-ene (Li2(bTAN) in ether, thus forming solution of Li2 (bTAN) in ether, and adding said solution of Li2 (bTAN) in ether into said solution of CoCl2 in THF to form cobalt (trans-2,3-bis(tert-butyl amidomethyl) norborn-5-ene (Co(bTAN)).
- 18. The method of claim 17, further comprising the steps of:
in said step (a), synthesizing [NOR]m/[NOR-Co]n said diblock copolymer by the ring opening metathesis polymerization of norbornene (NOR) and said Co(bTAN) formed in said step (b), said first polymer block including norbornene (NOR) and said second polymer block including Co (bTAN).
- 19. The method of claim 18, wherein said m/n=500/40 to form [NOR]500/[CO(bTAN)]40 diblock copolymer.
- 20. The method of claim 17, further comprising the steps of:
forming said solution of CoCl2 in THF by dissolving 0.47 g (3.6 mmol) of said CoCl2 in 50 ml of said THF at the temperature −40° C.; forming said solution of Li2 (bTAN) in ether by dissolving Ig (3.6 mmol) of said Li2 (bTAN) in said ether; holding a mixture of said solution of CoCl2 in THF and of said solution of Li2 (bTAN) in ether at room temperature for approximately 2 hours; and extracting said Co(bTAN) with 50 ml pentane.
- 21. The method of claim 18, further comprising the steps of:
prior to said synthesis of said [NOR]m/[NOR—CO]m, preparing a 4% solution of norbornene (NOR) in benzene by dissolving of 0.25 of norbornene (2.65−3 mol, 500 equivalent) in 6 ml of benzene.
- 22. The method of claim 21, further comprising the steps of:
initiating the polymerization of said [NOR]m/[Co(bTAN)]n diblock copolymer by adding a Bis (tricyclohexylphospine) benzylidine rutheniuna (IV) dichloride catalyst solution to said solution of said norbornene (NOR) in benzene to form NOR polymer solution.
- 23. The method of claim 22, further comprising the step of:
adding 2.7 mg (5.3−6 mol, {fraction (1/500)} equivalent) of said catalyst solution.
- 24. The method of claim 22, further comprising the steps of:
addition of 5.45−2 g of said Co(bTAN) (21.4−3 mol, 40 equivalent) to said NOR polymer solution after approximately 15 minutes from the introduction of said catalyst solution to form a resultant said [NOR]m/[Co(bTAN)n diblock copolymer.
- 25. The method of claim 24, further comprising the steps of:
precipitating said resultant [NOR]m/[Co(bTAN)]n diblock copolymer in pentane, and drying said precipitated [NOR]m/[Co(bTAN)]n diblock polymer.
- 26. The method of claim 25, further comprising the steps of:
preparing a 1% solution of said precipitated [NOR]m/[Co(bTAN)]n diblock copolymer in benzene, forming solid films of said [NOR]m/[Co(bTAN)]n diblock copolymer by static casting of said solution of said precipitated [NOR]m/[Co(bTAN)]n diblock copolymer in benzene over a period of approximately 240 hours, and washing said solid films with hydrogen peroxide (H2O2) for a period of approximately 24 hours to form CO3O4 nanoparticles within [NOR]m/[Co(bTAN)]n diblock copolymer.
- 27. A method of room temperature synthesis of CoFe2O4 nanoclusters within a diblock copolymer matrix, comprising the steps of:
ring opening metathesis polymerization of norbornene (NOR) and norbornene trimethylsilane (NORCOOTMS) in presence of a catalyst to form [NOR]400[NORCOOTMS]50 diblock polymer; converting said [NOR]400/[NORCOOTMS]50 diblock polymer into [NOR]400/[NORCOOH]50 diblock copolymer by precipitating said [NOR]400[NORCOOTMS]50 diblock polymer in a mixture of methanol, acetic acid and water; introducing FeCl3 and CoCl2 precursors into said [NOR]400[NORCOOH]50 diblock copolymer, thus forming the mixture of said [NOR]400[NORCOOH]50, FeCl3 and CoCl2, the FeCl3 and CoCl2 molecules attaching themselves to the NORCOOH blocks of said [NOR]400/[NORCOOH]50 diblock copolymer; forming solid films of said mixture of [NOR]400[NORCOOH]50, FeCl3 and CoCl2; and washing said solid films with NaOH and water, thus forming CoFe2O4 nanoclusters within the [NOR]400/[NORCOOH]50 diblock copolymer matrix.
- 28. The method of claim 27, further comprising the steps of:
initiating formation of said [NOR]400/[NORCOOTMS]50 diblock polymer by adding said catalyst to said (NORCOOTMS) to create poly-NORCOOTMS block, and further adding said (NOR) to said poly-NORCOOTMS block.
- 29. The method of claim 27, further comprising the steps of:
initiating formation of said [NOR]400[NORCOOTMS]50 diblock polymer by adding said catalyst to said (NOR) to create poly-NOR block, and further adding said (NORCOOTMS) to said poly-NOR block.
- 30. A method of room temperature synthesis of Co3O4 nanoclusters within a diblock copolymer matrix, comprising the steps of:
synthesizing cobalt (trans-2,3-bis(tert-butylamidomethyl) norborn-5-ene (Co(bTAN)) by mixing a solution of CoCl2 in tetrahydrofuran and a solution of Lithium-trans-2,3-bis (tert-butylamidomethyl) norborn-5-ene (Li2(bTAN)) in ether; ring opening metathesis polymerization of norbornene (NOR) and said Co(bTAN) in presence of a catalyst to form [NOR]500[Co(bTAN)]40 diblock copolymer; forming solid films of said [NOR]500[Co(bTAN)]40 diblock copolymer; and washing said solid films with hydrogen peroxide (H2O2), thus forming Co3O4 nanoclusters within the [NOR]500/[Co(bTAN)]40 diblock copolymer matrix.
REFERENCE TO RELATED APPLICATIONS
[0001] The present Utility Patent Application is based on Provisional Patent Application No. 60/340,033, filed 30 Nov. 2001, and Provisional Patent Application No. 60/340,065, filed 30 Nov. 2001.
PCT Information
| Filing Document |
Filing Date |
Country |
Kind |
| PCT/US02/36137 |
11/29/2002 |
WO |
|
Provisional Applications (2)
|
Number |
Date |
Country |
|
60340033 |
Nov 2001 |
US |
|
60340065 |
Nov 2001 |
US |