A Gradient Stiffness‐Programmed Circuit Board by Spatially Controlled Phase‐Transition of Supercooled Hydrogel for Stretchable Electronics Integration

Author:

Kim Minwoo1,Hong Sangwoo1,Park Jung Jae1,Jung Yeongju1,Choi Seok Hwan1,Cho Chulmin2,Ha Inho1,Won Phillip3,Majidi Carmel3,Ko Seung Hwan145ORCID

Affiliation:

1. Applied Nano and Thermal Science Lab Department of Mechanical Engineering Seoul National University 1 Gwanak‐ro, Gwanak‐gu Seoul 08826 South Korea

2. Mechatronics Research Device Solution Samsung Electronics 1, Samsungjeonja‐ro Hwaseong‐si Gyeonggi‐do 18848 South Korea

3. Mechanical Engineering Carnegie Mellon University Pittsburgh PA 15213 USA

4. Institute of Engineering Research/Institute of Advanced Machinery and Design (SNU‐IAMD) Seoul National University Gwanak‐ro, Gwanak‐gu Seoul 08826 South Korea

5. Interdisciplinary Program in Bioengineering Seoul National University Gwanak‐ro, Gwanak‐gu Seoul 08826 South Korea

Abstract

AbstractDue to emerging demands in soft electronics, there is an increasing need for material architectures that support robust interfacing between soft substrates, stretchable electrical interconnects, and embedded rigid microelectronics chips. Though researchers have adopted rigid‐island structures to solve the issue, this approach merely shifts stress concentrations from chip‐conductor interfaces to rigid‐island‐soft region interfaces in the substrate. Here, a gradient stiffness‐programmed circuit board (GS‐PCB) that possesses high stretchability and stability with surface mounted chips is introduced. The board comprises a stiffness‐programmed hydrogel substrate and a laser‐patterned liquid metal conductor. The hydrogel simultaneously obtains a large stiffness disparity and robust interfaces between rigid‐islands and soft regions. These seemingly contradictory conditions are accomplished by adopting a gradient stiffness structure at the interfaces, enabled by combining polymers with different interaction energies and a supercooled sodium acetate solution. By integrating the gel with laser‐patterned liquid metal with exceptional properties, GS‐PCB exhibits higher electromechanical stability than other rigid‐island research. To highlight the practicality of this approach, a finger‐sensor device that successfully distinguishes objects by direct physical contact is fabricated, demonstrating its stability under various mechanical disturbances.

Funder

National Research Foundation of Korea

Publisher

Wiley

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