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Nanomaterials 2019, 9, x FOR PEER REVIEW 3 of 13 The preparation process of CN-TENG is shown in Figure 1a. As demonstrated in Figure 1a1, a piece of 3 cm × 6 cm transparent PMMA is used as a substrate. Subsequently, two pieces of 2 cm × 3 Nanomaterials 2019, 9, 700 3 of 12 cm conductive copper–nickel alloy tape are attached on a PMMA substrate (see Figure 1a2). Then, the PTFE tape is applied to the surface of the copper foil, as illustrated in Figure 1a3. Afterward, the the substrate is folded into the device such that the PTFE tape surface faces the copper–nickel alloy substrate is folded into the device such that the PTFE tape surface faces the copper–nickel alloy tape tape surface, as illustrated in Figure 1(a4) and shown in Figure 1b. A stacked TENG is developed surface, as illustrated in Figure 1a4 and shown in Figure 1b. A stacked TENG is developed (see (see Figure 1(a5)) to strengthen the output current of the fabricated TENG. The SEM images in Figure 1a5) to strengthen the output current of the fabricated TENG. The SEM images in Figure 1c,d Figure 1c,d show the surfaces of the PTFE tape and the conductive tape. The fabric structure of the show the surfaces of the PTFE tape and the conductive tape. The fabric structure of the conductive conductive copper–nickel alloy tape surface can increase the roughness of the triboelectric material, copper–nickel alloy tape surface can increase the roughness of the triboelectric material, thereby thereby enhancing the output performance of the TENG. The digital oscilloscope is utilized to measure enhancing the output performance of the TENG. The digital oscilloscope is utilized to measure electrical output. The fabricated TENG was activated by a vibrator (amplitude and frequency: 5 mm electrical output. The fabricated TENG was activated by a vibrator (amplitude and frequency: 5 mm and 5 Hz, respectively), and a picture of the experimental setup is illustrated in Figure 1e. and 5 Hz, respectively), and a picture of the experimental setup is illustrated in Figure 1e. Fiigurre 11. .(a)(aP)repParreaptaiorantipornocepsrsoocfetshse coofppthere–ncicokpepl-ebra–sneidckterli-bboaesledctritcrinbaoneolegcetnriecratnoarn(CogNe-nTeErNatGor). ((CbN) -PThEoNtoGg)r.a(pbh) PohfotohgerafapbhroicfattheedfaCbNri-cTaEteNdGCNu-nTiEt.NGSEuMnit.imSEaMgeimshaogwe isnhgowthinegstuhrefascuerfaocfetohfeth(ec) (co)ncdonudctuivcetivtaepteapanedan(d)(pdo)lpyotelytrtaefltruaoflruooerthoyetlehnyele(nPeT(FPET)FtaEp)eta. p(e). T(eh)eTmhecmhaecnhicaanlivcaiblrvaitbiorantisoynstseymstaenmd amndeamsueraesmureenmt seynsttesyms.tem.PDF Image | Cost-Effective Copper–Nickel Triboelectric Nanogenerator High-Output Self-Powered Wearable Electronic Systems
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