Ternary oxide nanostructures and methods of making same
View Patent ↗A single crystalline ternary nanostructure having the formula A x B y O z , wherein x ranges from 0.25 to 24, and y ranges from 1.5 to 40, and wherein A and B are independently selected from the group consisting of Ag, Al, As, Au, B, Ba, Br, Ca, Cd, Ce, Cl, Cm, Co, Cr, Cs, Cu, Dy, Er, Eu, F, Fe, Ga, Gd, Ge, Hf, Ho, I, In, Ir, K, La, Li, Lu, Mg, Mn, Mo, Na, Nb, Nd, Ni, Os, P, Pb, Pd, Pr, Pt, Rb, Re, Rh, Ru, S, Sb, Sc, Se, Si, Sm, Sn, Sr, Ta, Tb, Tc, Te, Ti, Tl, Tm, U, V, W, Y, Yb, and Zn, wherein the nanostructure is at least 95% free of defects and/or dislocations.
1. A method of making a single crystalline ternary nanostructure having the formula A x B y O z , wherein x ranges from 0.25 to 24, y ranges from 0.5 to 40, z ranges from 2 to 100, and wherein A and B are independently selected from the group consisting of Ag, Al, As, Au, B, Ba, Bi, Br, Ca, Cd, Cl, Cm, Co, Cr, Cs, Cu, Dy, Er, Eu, F, Fe, Ga, Gd, Ge, Hf, Ho, I, In, Ir, K, La, Li, Lu, Mg, Mn, Mo, Na, Nb, Nd, Ni, Os, P, Pb, Pd, Pr, Pt, Re, Rh, Ru, S, Sb, Sc, Se, Si, Sm, Sn, Sr, Ta, Tb, Te, Ti, Tl, Tm, U, V, W, Y, Yb, and Zn comprising:
(a) mixing an aqueous A reagent with an aqueous B reagent in an aqueous solvent to form a precursor mixture,
(b) heating said precursor mixture to form a transparent sol comprising ternary oxide nanostructure precursors;
(c) depositing droplets of the sol are onto a porous template surface thereby forming a nanostructure; and
(d) retrieving the nanostructure.
2. The method of claim 1 wherein the single crystalline ternary nanostructure of A x B y O z has the formula Bi x M y O z , wherein M is a transitional metal.
3. The method of claim 2 wherein the molar ratio of the bismuth reagent to the M-reagent is about 1.5˜2 to 1.
4. The method of claim 1 wherein the single crystalline ternary nanostructure of A x B y O z has the formula M′ x Fe y O z , wherein M′ is a transitional metal.
5. The method of claim 4 wherein the molar ratio of the iron reagent to the M′-reagent is about 1.5˜2 to 1.
6. The method of claim 1 wherein the single crystalline ternary nanostructure consists essentially of BiFeO 3 or Bi 2 Fe 4 O 9 .
7. The method of claim 1 wherein the nanostructure is a nanocube, a nano-orthorhombus, a nanorod, a nanotube, rhombohedron or a nanoparticle.
8. A method of making a single crystalline ternary nanostructure having the formula A x B y O z , wherein x ranges from 0.25 to 24, y ranges from 0.5 to 40, and z ranges from 2 to 100, and wherein A and B are selected from the group consisting of Ag, Al, As, Au, B, Ba, Bi, Br, Ca, Cd, Cl, Cm, Co, Cr, Cs, Cu, Dy, Er, Eu, F, Fe, Ga, Gd, Ge, Hf, Ho, I, In, Ir, K, La, Li, Lu, Mg, Mn, Mo, Na, Nb, Nd, Ni, Os, P, Pb, Pd, Pr, Pt, Re, Rh, Ru, S, Sb, Sc, Se, Si, Sm, Sn, Sr, Ta, Tb, Te, Ti, Tl, Tm, U, V, W, Y, Yb, and Zn comprising: mixing an A reagent with a B reagent in the presence of a surfactant and a salt to form a mixture: and heating the mixture to an annealing temperature to produce nanostructures.
9. The method of claim 8 wherein the single crystalline ternary nanostructure of A x B y O z has the formula Bi x M y O z , wherein M is a transitional metal.
10. The method of claim 9 wherein the molar ratio of the bismuth reagent to the M-reagent ranges from about 1:1 to about 10:1.
11. The method of claim 8 wherein the single crystalline ternary nanostructure of A x B y O z has the formula M′ x Fe y O z , wherein M′ is a transitional metal.
12. The method of claim 11 wherein the molar ratio of the iron reagent to the M′-reagent ranges from about 1:1 to about 10:1.
13. The method of claim 8 wherein the single crystalline ternary nanostructure consists essentially of BiFeO 3 or Bi 2 Fe 4 O 9 .
14. The method of claim 8 wherein the nanostructure is a nanocube, a nano-orthorhombus, a nanorod, a nanotube, rhombohedron or a nanoparticle.
15. A method of making a single crystalline ternary nanostructure having the formula A x B y O z , wherein x ranges from 0.25 to 24, y ranges from 0.5 to 40, and z ranges from 2 to 100, and wherein A and B are independently selected from the group consisting of Ag, Al, As, Au, B, Ba, Bi, Br, Ca, Cd, Cl, Cm, Co, Cr, Cs, Cu, Dy, Er, Eu, F, Fe, Ga, Gd, Ge, Hf, Ho, I, In, Ir, K, La, Li, Lu, Mg, Mn, Mo, Na, Nb, Nd, Ni, Os, P, Pb, Pd, Pr, Pt, Re, Rh, Ru, S, Sb, Sc, Se, Si, Sm, Sn, Sr, Ta, Tb, Te, Ti, Tl, Tm, U, V, W, Y, Yb, and Zn comprising:
(a) mixing an aqueous A reagent with an aqueous B reagent in an aqueous solvent to form a precursor mixture;
(b) heating said precursor mixture to form a transparent sol comprising ternary oxide nanostructure precursors; and
(c) removing solvent.
16. The method of claim 15 wherein the single crystalline ternary nanostructure of A x B y O z has the formula Bi X M Y O Z , wherein M is a transitional metal.
17. The method of claim 16 wherein the M reagent is bismuth nitrate hydrate.
18. The method of claim 15 wherein the single crystalline ternary nanostructure of A x B y O z has the formula M′ x Fe y O z , wherein M′ is a transitional metal.
19. The method of claim 15 wherein the single crystalline ternary nanostructure consists essentially of BiFeO 3 or Bi 2 Fe 4 O 9 .
20. The method of claim 15 further comprising placing the precursor mixture on a template before heating.