A bioinspired microdevice unifying energy storage and actuation through hydration control
Abstract
Abstract Biological systems seamlessly integrate energy storage and actuation within compact architectures, whereas synthetic approaches largely implement these functions as separate components. Conjugated polymers can couple both, yet their operation relies on ion insertion accompanied by hydration water within the polymer backbone, creating an intrinsic trade-off between performance and stability. Here we show that anion hydration governs this trade-off. In-operando Raman spectroscopy and time-resolved mass measurements reveal that reducing anion hydration suppresses water ingress, mitigates backbone degradation and converts the polymer response from a two-step swelling process into a single, rapid volumetric relaxation. Leveraging this principle, we realize a sub-millimetre monolithic device that integrates energy storage and actuation within a 0.56 mm 2 footprint. A centrally configured dual-cell microbattery delivers 161 mAh cm -2 and reduces the energy consumption of surrounding actuators by fourfold. Hydration control, as the governing design parameter for multifunctional devices, holds translational promise for integrated energy–motion architectures at the microscale.
Article Details
Authors (16)
Wenlan Zhang
Leandro Merces
Jiachen Ma
Research Center for Materials, Architectures, and Integration of Nanomembranes (MAIN)
Christian Becker
Daniil Karnaushenko
Hongmei Tang
Jiangxi Provincial Key Laboratory of Greenhouse Gas Accounting and Carbon Reduction, Institute of Energy Research, Jiangxi Academy of Sciences
Jiang Qu
Letícia Mariê Minatogau Ferro
Yang Huang
Guizhou Provincial Key Laboratory of Innovation and Manufacturing for Pharmaceuticals, School of Pharmacy
Yaping Yan
Key Laboratory for Medicinal Resources and Natural Pharmaceutical Chemistry, Ministry of Education, College of Life Sciences, Shaanxi Normal University
Yeji Lee
Vineeth K. Bandari
Dmitriy D. Karnaushenko
Aleksandr I. Egunov
Minshen Zhu
Oliver G. Schmidt