Rapid Fabrication of Soft Strain Sensors by Multi-Nozzle Electrohydrodynamic Inkjet Printing for Wearable Electronics

Author(s):  
Arshad Khan ◽  
Shawkat Ali ◽  
Saleem Khan ◽  
Amine Bermak
2021 ◽  
Vol 13 (1) ◽  
Author(s):  
Heng Zhang ◽  
Dan Liu ◽  
Jeng-Hun Lee ◽  
Haomin Chen ◽  
Eunyoung Kim ◽  
...  

AbstractFlexible multidirectional strain sensors are crucial to accurately determining the complex strain states involved in emerging sensing applications. Although considerable efforts have been made to construct anisotropic structures for improved selective sensing capabilities, existing anisotropic sensors suffer from a trade-off between high sensitivity and high stretchability with acceptable linearity. Here, an ultrasensitive, highly selective multidirectional sensor is developed by rational design of functionally different anisotropic layers. The bilayer sensor consists of an aligned carbon nanotube (CNT) array assembled on top of a periodically wrinkled and cracked CNT–graphene oxide film. The transversely aligned CNT layer bridge the underlying longitudinal microcracks to effectively discourage their propagation even when highly stretched, leading to superior sensitivity with a gauge factor of 287.6 across a broad linear working range of up to 100% strain. The wrinkles generated through a pre-straining/releasing routine in the direction transverse to CNT alignment is responsible for exceptional selectivity of 6.3, to the benefit of accurate detection of loading directions by the multidirectional sensor. This work proposes a unique approach to leveraging the inherent merits of two cross-influential anisotropic structures to resolve the trade-off among sensitivity, selectivity, and stretchability, demonstrating promising applications in full-range, multi-axis human motion detection for wearable electronics and smart robotics.


2014 ◽  
Vol 1038 ◽  
pp. 49-55 ◽  
Author(s):  
Oleksandr Kravchuk ◽  
Kristina Grunewald ◽  
Joachim Bahr ◽  
Florian Hofmann ◽  
Marcus Reichenberger

Strain sensors based on the resistive principle have been developed and produced by inkjet printing. Depending on the surface conditions of the substrates and the properties of the silver inks, with adequate densification of the printed nanoparticle containing structures, gauge factors of around 2.6, dimensions of 6.7 mm × 6.4 mm and grid line widths of around 90 μm, have been achieved with silver inks. Performance tests including up to 120 mechanical deformation cycles have been successfully carried out.


APL Materials ◽  
2020 ◽  
Vol 8 (12) ◽  
pp. 120705
Author(s):  
Ke Yan ◽  
Jiean Li ◽  
Lijia Pan ◽  
Yi Shi

2010 ◽  
Vol 2010 ◽  
pp. 1-5 ◽  
Author(s):  
Fernando Martinez ◽  
Gregorio Obieta ◽  
Ion Uribe ◽  
Tomasz Sikora ◽  
Estibalitz Ochoteco

The design and characterization of polymer-based self-standing flexible strain sensors are presented in this work. Properties as lightness and flexibility make them suitable for the measurement of strain in applications related with wearable electronics such as robotics or rehabilitation devices. Several sensors have been fabricated to analyze the influence of size and electrical conductivity on their behavior. Elongation and applied charge were precisely controlled in order to measure different parameters as electrical resistance, gauge factor (GF), hysteresis, and repeatability. The results clearly show the influence of size and electrical conductivity on the gauge factor, but it is also important to point out the necessity of controlling the hysteresis and repeatability of the response for precision-demanding applications.


2017 ◽  
Vol 5 (40) ◽  
pp. 10571-10577 ◽  
Author(s):  
Fengling Chen ◽  
Yousong Gu ◽  
Shiyao Cao ◽  
Yong Li ◽  
Feng Li ◽  
...  

Novel, flexible and highly sensitive strain sensors were fabricated using graphite granular films by low-cost carbon-evaporation.


Author(s):  
Jing Wang ◽  
Yankun Lin ◽  
Amel Mohamed ◽  
Qingmin Ji ◽  
Hongbing Jia

As a typical wettable, flexible, and biocompatible material, hydrogel has been a potential candidate for wearable electronics.


Author(s):  
Qiuyan Li ◽  
Qing-Ming Wang

Inkjet printing has become a promising way to fabricate electrical mechanical devices and it has become a tool for rapid manufacturing technology. In this paper, the fabrication procedure and the characterization of the piezoresistive properties of Carbon nanotube (CNT) - Polyimide (PI) nanocomposites are presented. The suspensions of CNT-PI nanocomposites of five different CNT weight concentration based on the percolation threshold were fabricated, and the suspensions were then deposited on the polyimide substrate by a drop-on-demand piezoelectric inkjet printer. This makes it possible for the uniformity and geometry of the thin film to be highly controlled. Once the nanocomposites were fully cured, the strain sensors were ready for calibration. Under uniaxial tension, the strain and resistance change of the strain sensors were measured, and the gauge factors could be calculated. The temperature and humidity are two potential factors to effect the performance of the strain sensors. The temperature coefficients of the CNT-PI nanocomposites were measured and the temperature compensation methods were proposed. The humidity effect on the nanocomposites was also monitored, and a thin layer of Parylene-C was coated on the surface of the nanocomposites thin film and the effect of the coating was tested. In general, the inkjet printing technique was proved to be a convenient way to fabricate flexible nanocomposites thin film with uniform thickness and precise geometry control. The CNT-PI nanocomposite has good performance as piezoresistive strain sensor.


Author(s):  
Tao Chen ◽  
Peiling Wei ◽  
Guoyin Chen ◽  
Hongmei Liu ◽  
Innocent Tendo Mugaanire ◽  
...  

Wearable electronics have stimulated interest over the past few years due to their flexible and portable properties. Among them, hydrogel-based strain sensors demonstrate tremendous advantages because they exhibit attractive characteristics...


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