IP Library Patent Application 14629523
Patent Application
App. No. 14/629,523

NANOWIRE PREPARATION METHODS, COMPOSITIONS, AND ARTICLES

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Patent No.
US None
App. No.
14/629,523
Abstract

Nanomaterial preparation methods, compositions, and articles are disclosed and claimed. Such methods can provide nanomaterials with improved morphologies and reduced nitric oxide co-production relative to previous methods. Such materials are useful in electronic applications.

Claims (12)

1 . A method comprising:

providing at least one composition comprising at least one first reducible metal ion and at least one second metal or metal ion comprising at least one lanthanide metal or ion of a lanthanide, the at least one second metal or metal ion differing in atomic number from the at least one first reducible metal ion;

reducing the at least one first reducible metal ion to at least one first metal; and

further comprising co-producing nitric oxide at a ratio A of moles nitric oxide co-produced per more of the at least one first reducible metal ion reduced when reducing the at least one reducible metal ion in the absence of the at least one lanthanide metal or ion of the lanthanide.

2 . The method according to claim 1 , wherein the at least one first reducible metal ion comprises one or more of at least one coinage metal ion, at least one ion of an element from IUPAC Group 11, or at least one silver ion.

3 . The method according to claim 2 , wherein the at least one first reducible metal ion comprises at least one silver ion.

4 . The method according to claim 1 , wherein the at least one lanthanide metal or ion of a lanthanide comprises one or more of lanthanum, an ion of lanthanum, cerium, an ion of cerium, praseodymium, an ion of praseodymium, neodymium, an ion of neodymium, samarium, an ion of samarium, europium, an ion of europium, gadolinium, an ion of gadolinium, terbium, an ion of terbium, dysprosium, an ion of dysprosium, holmium, an ion of holmium, erbium, an ion of erbium, thulium, an ion of thulium, ytterbium, an ion of ytterbium, lutetium, or an ion of lutetium.

5 . The method according to claim 1 , wherein the ratio A is less than 15% of a ratio B, where B is the maximum instantaneous ratio of moles nitric oxide co-produced per mole of the at least one first reducible metal ion reduced when reducing the at least one first reducible metal ion in the presence of Cu 2+ ions.

6 . The method according to claim 1 , wherein the ratio A is less than 40% of a ratio B, where B is the maximum instantaneous ratio of moles nitric oxide co-produced per mole of the at least one first reducible metal ion reduced when reducing the at least one first reducible metal ion in the presence of Fe 2+ ions.

7 . The method according to claim 1 , wherein the ratio A is less than 10% of a ratio B, where B is the maximum instantaneous ratio of moles nitric oxide co-produced per mole of the at least one first reducible metal ion reduced when reducing the at least one first reducible metal ion in the presence of Sn 2+ ions.

8 . The method according to claim 1 , wherein the ratio A is less than 10% of a ratio B, where B is the maximum instantaneous ratio of moles nitric oxide co-produced per mole of the at least one first reducible metal ion reduced when reducing the at least one first reducible metal ion in the presence of Mn 2+ ions.

9 . The method according to claim 1 , wherein the ratio A is less than 15% of a ratio B, where B is the maximum instantaneous ratio of moles nitric oxide co-produced per mole of the at least one first reducible metal ion reduced when reducing the at least one first reducible metal ion in the presence of Cr 3+ ions.