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受生物启发的导电纤维素液晶水凝胶作为多功能电皮肤。

Bioinspired conductive cellulose liquid-crystal hydrogels as multifunctional electrical skins.

机构信息

Department of Rheumatology and Immunology, The Affiliated Drum Tower Hospital of Nanjing University Medical School, 210008 Nanjing, China.

Department of Clinical Laboratory, Nanjing Drum Tower Hospital, Clinical College of Xuzhou Medical University, 210008 Nanjing, China.

出版信息

Proc Natl Acad Sci U S A. 2020 Aug 4;117(31):18310-18316. doi: 10.1073/pnas.2007032117. Epub 2020 Jul 16.

Abstract

Bionic electronic skin (E-skin) that could convert external physical or mechanical stimuli into output signals has a wide range of applications including wearable devices, artificial prostheses, software robots, etc. Here, we present a chameleon-inspired multifunctional E-skin based on hydroxypropyl cellulose (HPC), Poly(Acrylamide-co-Acrylic acid) (PACA), and carbon nanotubes (CNTs) composited liquid-crystal hydrogel. We found that the HPC could still form cholesteric liquid-crystal photonic structures with the CNTs additive for enhancing their color saturation and PACA polymerization for locating their assembled periodic structures. As the composite hydrogel containing HPC elements and the PACA scaffold responds to different stimuli, such as temperature variations, mechanical pressure, and tension, it could correspondingly change its volume or internal nanostructure and report these as visible color switches. In addition, due to the additive of CNTs, the composite hydrogel could also output these stimuli as electrical resistance signals. Thus, the hydrogel E-skins had the ability of quantitatively feeding back external stimuli through electrical resistance as well as visually mapping the stimulating sites by color variation. This dual-signal sensing provides the ability of visible-user interaction as well as antiinterference, endowing the multifunctional E-skin with great application prospects.

摘要

仿生电子皮肤 (E-skin) 能够将外部物理或机械刺激转化为输出信号,其应用范围广泛,包括可穿戴设备、人工假肢、软体机器人等。在这里,我们展示了一种受变色龙启发的基于羟丙基纤维素 (HPC)、聚丙烯酰胺-共-丙烯酸 (PACA) 和碳纳米管 (CNTs) 的复合液晶水凝胶的多功能 E-skin。我们发现,HPC 仍可与 CNTs 添加剂形成胆甾相液晶光子结构,以提高其颜色饱和度,并与 PACA 聚合以定位其组装的周期性结构。由于含有 HPC 元素和 PACA 支架的复合水凝胶对温度变化、机械压力和张力等不同刺激做出响应,它可以相应地改变其体积或内部纳米结构,并将这些变化以可见的颜色变化来报告。此外,由于 CNTs 的添加,复合水凝胶还可以将这些刺激输出为电阻信号。因此,水凝胶 E-skin 具有通过电阻定量反馈外部刺激以及通过颜色变化直观映射刺激部位的能力。这种双信号传感提供了可见的用户交互以及抗干扰能力,赋予了多功能 E-skin 广阔的应用前景。

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