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基于推拉离子驻极体和离子-离子跳跃机制的用于 TENG 能量收集的集成电子皮肤(e-skin)。

Integrated electronic skin (e-skin) for harvesting of TENG energy through push-pull ionic electrets and ion-ion hopping mechanism.

机构信息

The Research Institute of Mechatronics, Department of Mechanical Engineering, Changwon National University, Changwon City, South Korea.

出版信息

Sci Rep. 2022 Mar 9;12(1):3879. doi: 10.1038/s41598-021-04555-3.

Abstract

The development of highly durable, stretchable, and steady triboelectric nanogenerators (TENGs) is highly desirable to satisfy the tight requirement of energy demand. Here, we presented a novel integrated polymeric membrane that is designed by PEDOT: PSSa-naphthalene sulfonated polyimide (PPNSP)-EMI.BF Electronic skin (e-skin) for potential TENG applications. The proposed TENG e-skin is fabricated by an interconnected architecture with push-pull ionic electrets that can threshold the transfer of charges through an ion-hopping mechanism for the generation of a higher output voltage (Voc) and currents (Jsc) against an electronegative PTFE film. PPNSP was synthesized from the condensation of naphthalene-tetracarboxylic dianhydride, 2,2'-benzidine sulfonic acid, and 4,4'diaminodiphenyl ether through an addition copolymerization protocol, and PEDOT: PSSa was subsequently deposited using the dip-coating method. Porous networked PPNSP e-skin with continuous ion transport nano-channels is synthesized by introducing simple and strong molecular push-pull interactions via intrinsic ions. In addition, EMI.BF ionic liquid (IL) is doped inside the PPNSP skin to interexchange ions to enhance the potential window for higher output Voc and Iscs. In this article, we investigated the push-pull dynamic interactions between PPNSP-EMI.BF e-skin and PTFE and tolerable output performance. The novel PPNSP- EMI.BF e-skin TENG produced upto 49.1 V and 1.03 µA at 1 Hz, 74 V and 1.45 µA at 2 Hz, 122.3 V and 2.21 µA at 3 Hz and 171 V and 3.6 µA at 4 Hz, and 195 V and 4.43 µA at 5 Hz, respectively. The proposed novel TENG device was shown to be highly flexible, highly durable, commercially viable, and a prospective candidate to produce higher electrical charge outputs at various applied frequencies.

摘要

为了满足对能量需求的严格要求,开发高度耐用、可拉伸且稳定的摩擦纳米发电机(TENG)是非常理想的。在这里,我们提出了一种新颖的集成聚合物膜,该膜由PEDOT:PSSa-萘磺酸聚酰亚胺(PPNSP)-EMI.BF 电子皮肤(e-skin)设计,用于潜在的 TENG 应用。所提出的 TENG e-skin 通过具有推拉离子电介质的互连连架构制造,该推拉离子电介质可以通过离子跳跃机制来限制电荷的转移,从而产生更高的输出电压(Voc)和电流(Jsc),以对抗电负性的 PTFE 膜。PPNSP 是通过萘四羧酸二酐、2,2'-联苯二磺酸和 4,4'-二氨基二苯醚的缩合共聚协议合成的,随后通过浸涂法沉积 PEDOT:PSSa。通过引入简单而强大的分子推拉相互作用,在多孔网络 PPNSP e-skin 中合成具有连续离子传输纳米通道的连续离子传输纳米通道。此外,将 EMI.BF 离子液体(IL)掺杂到 PPNSP 皮肤中,以交换离子,从而提高更高输出 Voc 和 Isc 的有效窗口。在本文中,我们研究了 PPNSP-EMI.BF e-skin 和 PTFE 之间的推拉动态相互作用以及可容忍的输出性能。新型 PPNSP-EMI.BF e-skin TENG 在 1Hz 时产生 49.1V 和 1.03µA,在 2Hz 时产生 74V 和 1.45µA,在 3Hz 时产生 122.3V 和 2.21µA,在 4Hz 时产生 171V 和 3.6µA,在 5Hz 时产生 195V 和 4.43µA。所提出的新型 TENG 装置具有高度的灵活性、高度的耐用性、商业可行性以及在各种应用频率下产生更高电电荷输出的有前景的候选者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c050/8907315/ca0c375c4284/41598_2021_4555_Fig1_HTML.jpg

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