VO
VO 2 and V 2 O 5 nano- or micro-materials. The VO 2 nano-materials and micro-materials have an M1 phase structure and oxygen stoichiometry that deviates 2% or less from theoretical stoichiometry. The VO 2 nano-materials and micro-materials may doped with cation dopants and/or anion dopants. The VO 2 and V 2 O 5 nano- or micro-materials can be made by hydrothermal methods starting with V 3 O 7 .H 2 O nano- or micro-material. The VO 2 and V 2 O 5 nano- or micro-materials can be used as, for example, thermochromic window coatings.
1. A method for making VO 2 nano-material or micro-material having an M1 phase structure and oxygen stoichiometry that deviates 2% or less from theoretical stoichiometry,
wherein the VO 2 nano-material or micro-material exhibits a metal-insulator transition and 80% or more of the total change in resistivity resulting from the metal-insulator transition occurs over a range of 5° C. or less, comprising:
a) providing a solid V 3 O 7 .H 2 O nano-material or micro-material and hydrothermally reducing the solid V 3 O 7 .H 2 O nano-material or micro-material with water and, optionally, one or more agents selected from the group consisting of:
i) a C 1 -C 8 linear or branched, substituted or unsubstituted, mono- or di-alcohol;
ii) a C 1 -C 8 linear or branched, substituted or unsubstituted mono- or di-carboxylic acid; and
iii) a C 1 -C 4 linear or branched, substituted or unsubstituted dialkyl-CO to produce a mixture of VO 2 (A) and VO 2 (B) nano- or micro-material;
b) filtering and washing the product from a) to isolate the mixture of VO 2 (A) and VO 2 (B) nano-material or micro-material;
c) annealing the isolated mixture of VO 2 (A) and VO 2 (B) nano-material or micro-material under an inert atmosphere at a temperature of at least 450° C.; and
d) cooling the product of c) to produce VO 2 nano-material or micro-material in the M1 phase.
2. The method for making VO 2 nano-material or micro-material of claim 1 , wherein the ratio (v/v) of agent to water in a) is 1:20 to 1:1.
3. The method for making VO 2 nano-material or micro-material of claim 1 , wherein the cooling in d) occurs by the cessation of heating.
4. The method for making VO 2 nano-material or micro-material of claim 1 , wherein a cation dopant source is present in a) and the cation dopant source comprises a metal and the cation dopant source is a nitrate salt of the metal, acetate salt of the metal, oxalate salt of the metal, oxide of the metal, or a combination thereof.
5. The method for making VO 2 nano-material or micro-material of claim 4 , wherein the cation dopant source is tungstic acid, chromic acid, molybdic acid, lead acetate, tungsten oxide, molybdenum oxide, niobium oxide, chromium oxide, aluminum oxide, iron oxide, titanium oxide, zirconium oxide, tantalum oxide, scandium oxide, or gallium oxide.
6. The method for making VO 2 nano-material or micro-material of claim 1 , wherein an anion dopant source is present in a).
7. The method for making VO 2 nano-material or micro-material of claim 6 , wherein the anion dopant source comprises a semi-metal or main group element.
8. The method for making VO 2 nano-material or micro-material of claim 1 , further comprising obtaining V 3 O 7 .H 2 O nano-material or micro-material by:
e) hydrothermally exfoliating and reducing bulk vanadium pentoxide (V 2 O 5 ) with water and a reducing agent; and
f) isolating the V 3 O 7 .H 2 O nano-material or micro-material from the product from e).
9. The method for making VO 2 nano-material or micro-material of claim 8 , wherein the isolating the V 3 O 7 .H 2 O nano-material or micro-material is carried out by filtering and washing the product from e).