4.7 Article

Self-Healable and Recyclable Dual-Shape Memory Liquid Metal-Elastomer Composites

Journal

POLYMERS
Volume 14, Issue 11, Pages -

Publisher

MDPI
DOI: 10.3390/polym14112259

Keywords

liquid metals; polyurethane elastomers; shape memory; recyclable electronics; self-healing

Funding

  1. National Natural Science Foundation of China [21903056, 52003158]
  2. Guangdong Basic and Applied Basic Research Foundation [2019A1515111147, 9451806001002961]
  3. Shenzhen Science and Technology Foundation [ZYC201105130111A]

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This study reports a liquid metal-polymer composite that can undergo shape-changing and has self-healing and recyclable properties. The composite has a bilayer structure and achieves excellent shape programming abilities through the phase transitions of the liquid metal and crystalline polyurethane. By designing and building a heat-triggered soft gripper and a light-controlled reconfigurable switch for a circuit, the shape-morphing abilities of the composite are demonstrated.
Liquid metal (LM)-polymer composites that combine the thermal and electrical conductivity of LMs with the shape-morphing capability of polymers are attracting a great deal of attention in the fields of reconfigurable electronics and soft robotics. However, investigation of the synergetic effect between the shape-changing properties of LMs and polymer matrices is lacking. Herein, a self-healable and recyclable dual-shape memory composite, comprising an LM (gallium) and a Diels-Alder (DA) crosslinked crystalline polyurethane (PU) elastomer, is reported. The composite exhibits a bilayer structure and achieves excellent shape programming abilities, due to the phase transitions of the LM and the crystalline PU elastomers. To demonstrate these shape-morphing abilities, a heat-triggered soft gripper, which can grasp and release objects according to the environmental temperature, is designed and built. Similarly, combining the electrical conductivity and the dual-shape memory effect of the composite, a light-controlled reconfigurable switch for a circuit is produced. In addition, due to the reversible nature of DA bonds, the composite is self-healable and recyclable. Both the LM and PU elastomer are recyclable, demonstrating the extremely high recycling efficiency (up to 96.7%) of the LM, as well as similar mechanical properties between the reprocessed elastomers and the pristine ones.

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