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April 28, 2026Angewandte Chemie0 citations

Bioinspired Starch‐Polyiodide Electrolytes for Self‐Healing Lithium‐Metal Interfaces and Stable Photoelectrochemical Energy Storage

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RWRonghao WangWWWeiyi WangSJSong Jing-jie

Key Points

  • The aim is to develop a biomimetic electrolyte to enhance lithium-metal interfaces for energy storage applications.
  • Developed a starch-polyiodide solid polymer electrolyte modeled after plant root mechanisms.
  • Conducted in situ characterization and theoretical calculations to analyze performance.
  • Evaluated performance of integrated energy storage device over 450 cycles at 1 C.
  • Achieved 85% capacity retention and 95.2% energy efficiency after 450 cycles.
  • Demonstrated improved ionic conductivity and self-healing capability for lithium metal interfaces.
  • Showed superior mechanical flexibility and efficient photo-electric conversion in the integrated system.

Abstract

ABSTRACT The development of high‐energy‐density power sources with integrated energy harvesting capabilities is crucial for advancing wearable electronics. Herein, inspired by the homeostatic ion regulation mechanisms of plant roots in dynamic chemical environments, we developed a biomimetic starch‐polyiodide solid polymer electrolyte for constructing an integrated photo‐rechargeable energy storage system. The incorporation of functionalized starch‐polyiodides reconfigures the PVDF matrix topology, modulates the all‐trans (TTTT) conformation and anchors anions, thereby optimizing lithium‐ion transport and enhancing ionic conductivity, while enabling interfacial dead‐lithium self‐healing at the anode and defect passivation of the photoelectrochemical storage cathode (PSC). In situ characterization and theoretical calculations revealed that the additive facilitated multi‐electron transfer and formed a functional buffer layer, which synergistically stabilized the lithium metal anode interface while suppressing ion migration at the PSC. This mechanism established a robust solid electrolyte interphase and improved the overall energy storage efficiency of the integrated device. The resulting flexible integrated device demonstrated outstanding performance, retaining 85% capacity and 95.2% energy efficiency after 450 cycles at 1 C while preserving superior mechanical flexibility and efficient photo‐electric conversion. This work provides a novel strategy for developing flexible energy storage systems that integrate high ionic conductivity, interfacial stability, and photo‐electrochemical synergy.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69f04edc727298f751e72bdahttps://doi.org/10.1002/ange.7391407
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