Growth of Nanowires
US-2024344223-A1 · Oct 17, 2024 · US
US2017314152A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2017314152-A1 |
| Application number | US-201715581903-A |
| Country | US |
| Kind code | A1 |
| Filing date | Apr 28, 2017 |
| Priority date | May 2, 2016 |
| Publication date | Nov 2, 2017 |
| Grant date | — |
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A metal nanolaminate includes a plurality of units stacked in a longitudinal direction of the metal nanolaminate. Each of the units includes a first layer and a second layer stacked in the longitudinal direction. The first layer includes a first metal material formed of a first metallic element and the second layer includes the first metal material and a second metal material formed of a second metallic element. Each of the first layer and the second layer has a thickness of at least 5 nm but less than 100 nm in the longitudinal direction.
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What is claimed is: 1 . A metal nanolaminate comprising a plurality of units stacked in a longitudinal direction of the metal nanolaminate, each of the units comprising a first layer and a second layer stacked in the longitudinal direction, the first layer comprising a first metal material formed of a first metallic element and the second layer comprising the first metal material and a second metal material formed of a second metallic element, wherein each of the first layer and the second layer has a thickness of at least 5 nm but less than 100 nm in the longitudinal direction. 2 . The metal nanolaminate of claim 1 , wherein the second layer contains 3 to 15 atomic percent of the second metallic element. 3 . The metal nanolaminate of claim 1 , wherein the first metallic element and the second metallic element have the same crystal structure and the second metallic element has a larger lattice constant than the first metallic element. 4 . The metal nanolaminate of claim 1 , wherein the second metal material comprises clusters of the second metallic element dispersed in the first metal material. 5 . The metal nanolaminate of claim 1 , wherein the second layer comprises a first interlayer in an area adjacent to the first layer and the amount of the second metallic element contained in the first interlayer gradually decreases from the second layer toward the first layer. 6 . The metal nanolaminate of claim 5 , wherein the second layer further comprises a second interlayer at a side opposite to the first interlayer, the second interlayer borders a first layer of a neighboring unit, and the amount of the second metallic element contained in the second interlayer gradually decreases from the second layer toward the first layer of the neighboring unit. 7 . The metal nanolaminate of claim 1 , wherein the first metallic element is nickel and the second metallic element is gold. 8 . The metal nanolaminate of claim 1 , wherein a cut surface of the metal nanolaminate cut by tensile strength is perpendicular to the longitudinal direction. 9 . The metal nanolaminate of claim 8 , wherein the metal nanolaminate is cut without plastic deformation. 10 . The metal nanolaminate of claim 1 , wherein a grain size of the first metal material contained in the second layer and a grain size of the second metal material contained in the second layer are smaller than a grain size of the first metal material contained in the first layer. 11 . The metal nanolaminate of claim 1 , further comprising a hollow extending along the longitudinal direction at a center of the metal nanolaminate. 12 . A method of manufacturing a metal nanolaminate, the method comprising: forming a working electrode at one side of an anodic aluminum oxide template comprising at least one hole; dipping the anodic aluminum oxide template and an opposite electrode into a solution containing a first metallic element and a second metallic element; and applying a pulse voltage between the working electrode and the opposite electrode to form a metal nanolaminate in the at least one hole, wherein a first layer and a second layer are formed to be alternately stacked in the metal nanolaminate, the first layer is formed of a first metal material formed of the first metallic element, the second layer is formed of the first metal material and a second metal material formed of the second metallic element, and each of the first layer and the second layer has a thickness of at least 5 nm but less than 100 nm in a stack direction. 13 . The method of claim 12 , wherein a magnitude of the pulse voltage applied to form the second layer is greater than a magnitude of the pulse voltage applied to form the first layer and the second layer contains 3 to 15 atomic percent of the second metallic element. 14 . The method of claim 12 , wherein when the second layer is formed, clusters of the second metallic element are formed in the first metal material. 15 . The method of claim 12 , wherein the second layer comprises an interlayer in an area adjacent to the first layer and the amount of the second metallic element contained in the interlayer gradually decreases toward the first layer. 16 . The method of claim 12 , wherein the first metallic element is nickel, the second metallic element is gold, and the solution contains nickel sulfate hexahydrate and potassium dicyanoaurate. 17 . The method of claim 12 , wherein a grain size of the first metal material contained in the second layer and a grain size of the second metal material contained in the second layer are smaller than a grain size of the first metal material contained in the first layer. 18 . The method of claim 12 , wherein the working electrode is formed of silver and the opposite electrode is formed of platinum. 19 . The method of claim 12 , further comprising eliminating the anodic aluminum oxide template with a sodium hydroxide solution and rinsing the metal nanolaminate with deionized water. 20 . The method of claim 12 , wherein the metal nanolaminate is formed to comprise a hollow extending along a longitudinal direction of the metal nanolaminate at a center of the metal nanolaminate.
with reduction of metal compounds · CPC title
Silver or gold · CPC title
Nanostructures, e.g. using aluminium anodic oxidation templates [AAO] · CPC title
Group IB metal-base component alternative to platinum group metal-base component [e.g., precious metal, etc.] · CPC title
Ni-base component · CPC title
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