Light-Controlled Triple-Shape-Memory, High-Permittivity Dynamic Elastomer for Wearable Multifunctional Information Encoding Devices

Self-powered information encoding devices (IEDs) have drawn considerable interest owing to their capability to process information without batteries. Next-generation IEDs should be reprogrammable, self-healing, and wearable to satisfy the emerging requirements for multifunctional IEDs; however, such...

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Veröffentlicht in:ACS nano 2022-10, Vol.16 (10), p.16954-16965
Hauptverfasser: Xuan, Huixia, Guan, Qingbao, Tan, Hao, Zuo, Han, Sun, Lijie, Guo, Yifan, Zhang, Luzhi, Neisiany, Rasoul Esmaeely, You, Zhengwei
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Sprache:eng
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Zusammenfassung:Self-powered information encoding devices (IEDs) have drawn considerable interest owing to their capability to process information without batteries. Next-generation IEDs should be reprogrammable, self-healing, and wearable to satisfy the emerging requirements for multifunctional IEDs; however, such devices have not been demonstrated. Herein, an integrated triboelectric nanogenerator-based IED with the aforementioned features was developed based on the designed light-responsive high-permittivity poly­(sebacoyl diglyceride-co-4,4′-azodibenzoyl diglyceride) elastomer (PSeDAE) with a triple-shape-memory effect. The electrical memory feature was achieved through a microscale shape-memory property, enabling spatiotemporal information reprogramming for the IED. Macroscale shape-memory behavior afforded the IED shape-reprogramming ability, yielding wearable and detachable features. The dynamic transesterifications and light-heating groups in the PSeDAE afforded a remotely controlled rearrangement of its cross-linking network, producing the self-healing IED.
ISSN:1936-0851
1936-086X
DOI:10.1021/acsnano.2c07004