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一种基于多模态铁磁流体注入表面的超可塑、智能传感平台。

An Ultra-Shapeable, Smart Sensing Platform Based on a Multimodal Ferrofluid-Infused Surface.

机构信息

School of Mechanical & Industrial Engineering, University of Toronto, Toronto, ON, M5S 3G8, Canada.

Department of Mechanical Engineering, McMaster University, Hamilton, ON, L8S 4L7, Canada.

出版信息

Adv Mater. 2019 Mar;31(11):e1807201. doi: 10.1002/adma.201807201. Epub 2019 Jan 28.

Abstract

The development of wearable, all-in-one sensors that can simultaneously monitor several hazard conditions in a real-time fashion imposes the emergent requirement for a smart and stretchable hazard avoidance sensing platform that is stretchable and skin-like. Multifunctional sensors with these features are problematic and challenging to accomplish. In this context, a multimodal ferrofluid-based triboelectric nanogenerator (FO-TENG), featuring sensing capabilities to a variety of hazard stimulus such as a strong magnetic field, noise level, and falling or drowning is reported. The FO-TENG consists of a deformable elastomer tube filled with a ferrofluid, as a triboelectric layer, surrounded by a patterned copper wire, as an electrode, endowing the FO-TENG with excellent waterproof ability, conformability, and stretchability (up to 300%). In addition, The FO-TENG is highly flexible and sustains structural integrity and detection capability under repetitive deformations, including bending and twisting. This FO-TENG represents a smart multifaceted sensing platform that has a unique capacity in diverse applications including hazard preventive wearables, and remote healthcare monitoring.

摘要

可同时实时监测多种危险情况的可穿戴、一体式传感器的发展,对智能可拉伸危险回避传感平台提出了紧急需求,该平台应具有可拉伸性和类似皮肤的特性。具有这些功能的多功能传感器很难实现。在这种情况下,本文报道了一种基于铁磁流体的多模式摩擦纳米发电机(FO-TENG),它具有对多种危险刺激(如强磁场、噪声水平以及坠落或溺水)的传感能力。FO-TENG 由一个充满铁磁流体的可变形弹性体管组成,作为摩擦电层,周围是一个图案化的铜线作为电极,使 FO-TENG 具有出色的防水能力、贴合性和拉伸性(高达 300%)。此外,FO-TENG 非常灵活,在包括弯曲和扭曲在内的重复变形下,仍能保持结构完整性和检测能力。这种 FO-TENG 代表了一种智能多方面的传感平台,它在包括危险预防可穿戴设备和远程医疗监测在内的各种应用中具有独特的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b684/7207066/c17f165479f6/nihms-1579026-f0001.jpg

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