Self‐Healable, Recyclable Anisotropic Conductive Films of Liquid Metal‐Gelatin Hybrids for Soft Electronics

2021 ◽  
pp. 2101034
Author(s):  
Young‐Geun Park ◽  
Jiuk Jang ◽  
Hyobeom Kim ◽  
Jae Chul Hwang ◽  
Yong Won Kwon ◽  
...  
Author(s):  
Lucy Johnston ◽  
Jiong Yang ◽  
Jialuo Han ◽  
Kourosh Kalantar-Zadeh ◽  
Jianbo Tang

Liquid metals, highly conductive and flowable metals, are increasingly becoming versatile choices for soft electronics and wearable devices. High resolution liquid metal patterning strategies accommodative to different substrate materials and...


2021 ◽  
pp. 2002280
Author(s):  
Young‐Geun Park ◽  
Ga‐Yeon Lee ◽  
Jiuk Jang ◽  
Su Min Yun ◽  
Enji Kim ◽  
...  

Physics Today ◽  
2020 ◽  
Vol 73 (11) ◽  
pp. 62-63
Author(s):  
Adam Fortais

Materials ◽  
2021 ◽  
Vol 14 (15) ◽  
pp. 4313
Author(s):  
Peng Xiao ◽  
Ju-Hyung Kim ◽  
Soonmin Seo

We investigated characteristics of highly flexible and stretchable electrodes consisting of Galinstan (i.e., a gallium-based liquid metal alloy) under various conditions including sub-zero temperature (i.e., <0 °C) and demonstrated solar-blind photodetection via the spontaneous oxidation of Galinstan. For this work, a simple and rapid method was introduced to fabricate the Galinstan electrodes with precise patterns and to exfoliate their surface oxide layers. Thin conductive films possessing flexibility and stretchability can be easily prepared on flexible substrates with large areas through compression of a dried suspension of Galinstan microdroplets. Furthermore, a laser marking machine was employed to facilitate patterning of the Galinstan films at a high resolution of 20 μm. The patterned Galinstan films were used as flexible and stretchable electrodes. The electrical conductivity of these electrodes was measured to be ~1.3 × 106 S m−1, which were still electrically conductive even if the stretching ratio increased up to 130% below 0 °C. In addition, the surface oxide (i.e., Ga2O3) layers possessing photo-responsive properties were spontaneously formed on the Galinstan surfaces under ambient conditions, which could be solely exfoliated using elastomeric stamps. By combining Galinstan and its surface oxide layers, solar-blind photodetectors were successfully fabricated on flexible substrates, exhibiting a distinct increase of up to 14.7% in output current under deep ultraviolet irradiation (254 nm wavelength) with an extremely low light intensity of 0.1 mW cm−2, whereas no significant change was observed under visible light irradiation.


2021 ◽  
Author(s):  
Gun-Hee Lee ◽  
Hyeonji Kim ◽  
Juhyun Lee ◽  
Congqi Yang ◽  
Heemin Kang ◽  
...  

Abstract Liquid metal (LM) is considered one of the most promising conducting materials for soft electronics due to its unique combination of metal-level high conductivity with exceptional deformability and stretchability. However, their practical applicability has thus far been limited due to the challenges of generating chemically and mechanically stable film over a large-area and the need for non-standard fabrication approaches. Here, we report materials and manufacturing methods that enable multiscale patterning (from microns to centimeters) and multilayer integration of ‘solid-state liquid metal (SSLM)’ with the conventional cleanroom process. In this work, solution shearing of a polyelectrolyte-attached LM particle ink is used to generate SSLM films. The stabilized LM particles were observed to form a close-packed thin-film without particle rupture when coated under evaporative regime. This is essential in enabling a subsequent photolithographic lift-off process at wafer-scale to produce high-resolution features (~ 10 µm) of varying thicknesses irrespective of the substrate. Demonstrations of wearable multilayer tactile sensing systems and stretchable skin-interfaced electronics validate the simplicity, versatility, and reliability of this manufacturing strategy, suggesting broad utility in the development of advanced soft electronics.


Micromachines ◽  
2019 ◽  
Vol 10 (2) ◽  
pp. 113 ◽  
Author(s):  
Ruiwen Niu ◽  
Mingliang Jin ◽  
Jieping Cao ◽  
Zhibin Yan ◽  
Jinwei Gao ◽  
...  

Self-healing flexible conductive films have been fabricated, evaluated, and applied. The film is composed of a fragile indium tin oxide (ITO) layer covered with sprayed liquid metal (LM) droplets. Self-healing of electrical conductivity is achieved via spontaneous capillary wicking of LM droplets into cracks/defects of the ITO film. The liquid metal adhering onto the ITO layer can also connect the ITO fragments during bending to keep the overall conductivity of the composite LM/ITO film stable. Stable and reversible electrowetting performance has been achieved with the composite LM/ITO as the conductive film, in either flat or curved states.


2021 ◽  
pp. 2105481
Author(s):  
Xing Peng Hao ◽  
Chen Yu Li ◽  
Chuan Wei Zhang ◽  
Miao Du ◽  
Zhimin Ying ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document