Energy release using tunable reactive materials
A reactive material stack with tunable ignition temperatures is provided by inserting a barrier layer between layers of reactive materials. The barrier layer prevents the interdiffusion of the reactive materials, thus a reaction between reactive materials only occurs at an elevated ignition temperature when a certain energy threshold is reached.
1. A reactive material stack comprising:
alternating layers of a first reactive material and a second reactive material; and
a barrier layer located between the layers of the first reactive material and the second reactive material, wherein the barrier layer comprises a stack of, from bottom to top, Al x O y /Ta/Ta x O y , wherein x is from 1 to 3 and y is from 1 to 5.
2. The reactive material stack of claim 1 , wherein the barrier layer is located between each layer of the first reactive material and the second reactive material.
3. The reactive material stack of claim 1 , wherein the barrier layer is located between each pair of the layers of the first reactive material and the second reactive material.
4. The reactive material stack of claim 1 , wherein the first reactive material and the second reactive material comprise material sets that react with one another in an exothermic reaction upon ignition and are selected from Ni and Al, Al and Pd, Cu and Pd, Nb and Si, and Ti and Al.
5. The reactive material stack of claim 1 , wherein each of the layers of the first reactive material and the second reactive material has a thickness from 1 nm to 200 nm, and the barrier layer has a thickness from 1 nm to 20 nm.
6. The reactive material stack of claim 1 , wherein the reactive material stack has a total thickness from 0.5 μm to 10 μm.
7. The reactive material stack of claim 1 , wherein the first reactive material and the second reactive material reacts with each other, but not with the barrier layer, to form an alloy or a composite consisting of the first reactive material and the second reactive material.
8. A reactive material stack comprising:
alternating layers of a first reactive material and a second reactive material; and
a barrier layer located between the layers of the first reactive material and the second reactive material, wherein the barrier layer comprises a stack of, from bottom to top, Al x O y /Ta/Ta x O y /Ta/Ta x O y , wherein x is from 1 to 3 and y is from 1 to 5.
9. The reactive material stack of claim 8 , wherein the barrier layer is located between each layer of the first reactive material and the second reactive material.
10. The reactive material stack of claim 8 , wherein the barrier layer is located between each pair of the layers of the first reactive material and the second reactive material.
11. The reactive material stack of claim 8 , wherein the first reactive material and the second reactive material comprise material sets that react with one another in an exothermic reaction upon ignition and are selected from Ni and Al, Al and Pd, Cu and Pd, Nb and Si, and Ti and Al.
12. The reactive material stack of claim 8 , wherein each of the layers of the first reactive material and the second reactive material has a thickness from 1 nm to 200 nm, and the barrier layer has a thickness from 1 nm to 20 nm.
13. The reactive material stack of claim 8 , wherein the reactive material stack has a total thickness from 0.5 μm to 10 μm.