Articles comprising core shell liquid metal encapsulate networks and method to control alternating current signals and power
US-2022355263-A1 · Nov 10, 2022 · US
US12093381B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12093381-B2 |
| Application number | US-202318342790-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 28, 2023 |
| Priority date | Nov 2, 2018 |
| Publication date | Sep 17, 2024 |
| Grant date | Sep 17, 2024 |
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The present invention relates to core shell liquid metal encapsulates comprising multi-functional ligands, networks comprising such encapsulates and processes of making and using such encapsulates and networks. When subjected to strain, such network's conductivity is enhanced, thus allowing the network to serve as a healing agent that restores at least a portion of the conductivity in an adjacent conductor.
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What is claimed is: 1. An article, said article being a stretchable conductor comprising an encapsulate comprising a liquid metal core having an external surface, a metal oxide shell that encapsulates said liquid metal core, said shell having an external shell surface; and one or more multi-functional ligands covalently bound to said shell's external surface and/or coordinatively bound to said liquid metal core's external surface, said liquid metal core comprising a liquid metal selected from the group consisting of Hg, Pb, Sn, Sb, Cd, Bi, Ga, In, Al, Zn, Ag, Au, Tl and mixtures thereof, said shell comprising a metal oxide comprising a cation derived from a metal selected from the group consisting of Ga, In, Sn, Pb, Sb, Cd, Al, Zn, Tl, Bi, Ca, Sc, Ti, V, Cr, Sr, Y, Zr, Nb, Mo, Te, Gd, Hf, Pr, Nd, Pt, Sm, Eu, Dy, Ho, Er, Yb, Pu and mixtures thereof; and said one or more multi-functional ligands comprising a head group that comprises a material selected from the group consisting of thiols, amines, phosphonic acids, alkoxysilanes, halosilanes, nitriles, and mixtures thereof; said stretchable conductor having one or more of the following properties: a) a conductivity increase of about 5 to about 10 orders of magnitude over an initial elongation of about 1% to about 300%; b) a repeatable resistance variation of less than 100% over an elongation of about 150% to about 750%; c) a repeatable resistance decrease of greater than 0% to about 20% over a range of elongation from greater than 0% to about 100%, a repeatable resistance decrease of greater than 5% to about 20% over a range of elongation from greater than 0% to about 100%, or a repeatable resistance decrease of greater than 0% to about 10% over a range of elongation from greater than 0% to about 50%. 2. The stretchable conductor according to claim 1 , comprising a liquid metal selected from the group consisting of Ga, In, Sn, Bi, Pb, Cd, Sb and mixtures thereof, said stretchable conductor having one or more of the following properties: a) a conductivity increase of about 7 to about 9 orders of magnitude over an initial elongation of about 50% to about 125%; b) a repeatable resistance variation of less than 50% over an elongation of about 150% to about 300% c) a repeatable resistance decrease of greater than 0% to about 20% over a range of elongation from greater than 0% to about 100%, a repeatable resistance decrease of greater than 5% to about 20% over a range of elongation from greater than 0% to about 100%, or a repeatable resistance decrease of greater than 0% to about 10% over a range of elongation from greater than 0% to about 50%. 3. The stretchable conductor according to claim 1 , comprising a liquid metal selected from the group consisting of Ga, In, Sn, Bi, Sb and mixtures thereof. 4. The stretchable conductor according to claim 1 , said stretchable conductor comprises a core shell liquid metal encapsulate network comprising said encapsulate. 5. A method of using a stretchable conductor according to claim 4 , comprising: applying said liquid metal encapsulate network to a substrate including coating at least a portion of one or more surfaces of said substrate with said liquid metal encapsulate network, encapsulating said substrate with said liquid metal encapsulate network; connecting at least a portion of two or more substrates with said liquid metal encapsulate network and/or using said liquid metal encapsulate network as an internal component of a substrate. 6. A process of producing a core shell liquid metal encapsulate network from a plurality of encapsulates comprising a liquid metal core having an external surface, a metal oxide shell that encapsulates said liquid metal core, said shell having an external shell surface; and one or more multi-functional ligands covalently bound to said shell's external surface and/or coordinatively bound to said liquid metal core's external surface, said liquid metal core comprising a liquid metal selected from the group consisting of Hg, Pb, Sn, Sb, Cd, Bi, Ga, In, Al, Zn, Ag, Au, Tl and mixtures thereof, said shell comprising a metal oxide comprising a cation derived from a metal selected from the group consisting of Ga, In, Sn, Pb, Sb, Cd, Al, Zn, Tl, Bi, Ca, Sc, Ti, V, Cr, Sr, Y, Zr, Nb, Mo, Te, Gd, Hf, Pr, Nd, Pt, Sm, Eu, Dy, Ho, Er, Yb, Pu and mixtures thereof; and said one or more multi-functional ligands comprising a head group that comprises a material selected from the group consisting of thiols, amines, phosphonic acids, alkoxysilanes, halosilanes, nitriles, and mixtures thereof, said process comprising stimulating said multi-functional ligands by imparting energy to said ligands and/or combining said multi-functional ligands with one or more initiators. 7. A process according to claim 6 wherein said encapsulates are suspended in a continuous liquid phase prior to being stimulated and optionally deposited on a substrate and optionally dried on said substrate.
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