Triboelectric film laminate based on conductive primer
US-2024356461-A1 · Oct 24, 2024 · US
US2020161990A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2020161990-A1 |
| Application number | US-201916352814-A |
| Country | US |
| Kind code | A1 |
| Filing date | Mar 13, 2019 |
| Priority date | Nov 21, 2018 |
| Publication date | May 21, 2020 |
| Grant date | — |
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A triboelectric nanogenerator structure is provided. The triboelectric nanogenerator structure is composed of an upper electrode layer, a lower triboelectric layer, a lower electrode layer and an electric connecting member. The upper electrode layer is composed of a hybrid gel. The lower triboelectric layer corresponding to the upper electrode layer has a first surface and a second surface, and the first surface faces toward the upper electrode layer. The lower electrode layer is disposed at the second surface. The electric connecting member connects the upper electrode layer to the lower electrode layer.
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What is claimed is: 1 . A triboelectric nanogenerator structure composed of an upper electrode layer, a lower triboelectric layer, a lower electrode layer and an electric connecting member, wherein: the upper electrode layer is composed of a hybrid gel; the lower triboelectric layer corresponding to the upper electrode layer has a first surface and a second surface, wherein the first surface faces toward the upper electrode layer; the lower electrode is disposed at the second surface; and the electric connecting member connects the upper electrode layer to the lower electrode layer. 2 . The triboelectric nanogenerator structure of claim 1 , wherein the hybrid gel comprises: a chitosan; and a glycerol mixed with the chitosan. 3 . The triboelectric nanogenerator structure of claim 2 , wherein a concentration of the glycerol is within a range of 15 wt % to 25 wt %. 4 . The triboelectric nanogenerator structure of claim 1 , wherein an output voltage of the triboelectric nanogenerator structure satisfies the following condition: 0.9≤ V 1/ V 2≤1; wherein V 1 represents the output voltage of the triboelectric nanogenerator structure at a relative humidity of 20%, and V 2 represents the output voltage of the triboelectric nanogenerator structure at the relative humidity of 80%. 5 . A triboelectric nanogenerator structure, comprising: an upper electrode layer composed of a hybrid gel; a lower triboelectric layer corresponding to the upper electrode layer having a first surface and a second surface, wherein the first surface faces toward the upper electrode layer; a lower electrode disposed at the second surface; and an electric connecting member connecting the upper electrode layer to the lower electrode layer; wherein an output voltage of the triboelectric nanogenerator structure satisfies the following condition: 0.9≤ V 1/ V 2≤1; wherein V 1 represents the output voltage of the triboelectric nanogenerator structure at a relative humidity of 20%, and V 2 represents the output voltage of the triboelectric nanogenerator structure at the relative humidity of 80%. 6 . The triboelectric nanogenerator structure of claim 5 , wherein the hybrid gel comprises: a chitosan; and a glycerol mixed with the chitosan. 7 . The triboelectric nanogenerator structure of claim 6 , wherein a concentration of the glycerol is within a range of 15 wt % to 25 wt %. 8 . A sensing system, comprising: a humidity sensing module, comprising: a humidity sensor; and a power source, comprising the triboelectric nanogenerator structure of claim 5 , wherein the electric connecting member of the triboelectric nanogenerator structure is connected to the humidity sensor; and a display module electrically connected to the humidity sensing module. 9 . The sensing system of claim 8 , wherein the display module comprises: an LED electrically connected to the humidity sensing module. 10 . The sensing system of claim 8 , further comprising a wearable member and a disposing member, wherein the disposing member corresponds to the wearable member, the upper electrode layer is disposed at the wearable member and is exposed therefrom, and the lower electrode layer is disposed between the disposing member and the lower triboelectric layer. 11 . The sensing system of claim 8 , wherein the triboelectric nanogenerator structure further comprises: a hollow spacer disposed between the upper electrode layer and the lower triboelectric layer; wherein when the triboelectric nanogenerator structure is forced, the hollow spacer is deformed such that the upper electrode layer contacts the lower triboelectric layer. 12 . A sensing system, comprising: a sensing module, comprising a plurality of sensors, wherein each of the sensors contacts each of the plurality of portions of an article, and each of the sensors comprises a triboelectric nanogenerator structure of claim 5 ; and a display module electrically connected to the sensing module; wherein output voltages of the sensors are changeable according to motions of the portions of the article. 13 . The sensing system of claim 12 , further comprising a disposing member corresponding to the article, wherein each of the lower electrode layers are disposed at the disposing member, and the article contacts each of the sensors to cause each of the sensors to produce the output voltage. 14 . The sensing system of claim 12 , wherein the triboelectric nanogenerator structure further comprises: a hollow spacer disposed between the upper electrode layer and the lower triboelectric layer; wherein when the triboelectric nanogenerator structure is forced, the hollow spacer is deformed such that the upper electrode layer contacts the lower triboelectric layer. 15 . A disinfecting system, comprising: a wearable member, comprising a disinfecting layer; and a power source, comprising the triboelectric nanogenerator structure of claim 5 , wherein the electric connecting member of the triboelectric nanogenerator structure is electrically connected to the disinfecting layer. 16 . The disinfecting system of claim 15 , wherein the power source further comprises a flexible substrate, the flexible substrate is folded to form a plurality of sublayers, each of the sublayers has an upper surface and a lower surface, the disinfecting system comprises a plurality of triboelectric nanogenerator structures, one of the upper electrode layers is disposed at one of the upper surface and the lower surface of one of the sublayers, and one of the lower electrode layers is disposed at the other one of the upper surface and the lower surface of the one of the sublayers.
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