Tailoring Ion-Transport Networks for Wide-Temperature Mg-Organic Batteries

Abstract Developing high-performance magnesium metal batteries is hindered by sluggish Mg2+ diffusion kinetics and the structural instability of conventional cathodes. Here, we propose a design principle for organic cathodes by regulating polymer spatial configurations, which facilitates multidirectional Mg2+ transport and enhances structural robustness. Three poly(perylene diimide) (PDI)-based polymers, namely linear pPDI, zigzag mPDI, and layered oPDI, were synthesized to systematically investigate the structure–function relationship. The oPDI cathode, featuring a highly ordered two-dimensional layered configuration, forms an interconnected three-dimensional Mg2+ transport network, in striking contrast to the one-dimensional interchain hopping confined in pPDI and mPDI. By integrating multiscale experimental characterizations with density functional theory calculations, we reveal that oPDI enables rapid Mg2+ diffusion, minimizes structural distortion, and exhibits highly reversible carbonyl redox chemistry. Consequently, oPDI exhibits enhanced rate capability, durable cycling performance (92% retention over 1000 cycles), and wide-temperature adaptability from −20 to 50 °C. Furthermore, Mg||oPDI pouch cells also maintain stable cycling performance, demonstrating the potential for practical implementation. This work presents spatial configuration engineering as an effective strategy for designing high-performance organic cathodes and advances the development of safe, scalable, and temperature-resilient magnesium batteries.

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Publication Details

Journal
ACS Nano
Published
2026-09-21
DOI
https://doi.org/10.1021/acsnano.6c13540
Primary Topic
Advancements in Battery Materials
Type
article
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article

Tailoring Ion-Transport Networks for Wide-Temperature Mg-Organic Batteries

Chenxu Dong, Juncai Long, Qinyou An, Qi Meng et al.
ACS Nano
Advancements in Battery Materials
article

Tailoring Ion-Transport Networks for Wide-Temperature Mg-Organic Batteries

Chenxu Dong, Juncai Long, Qinyou An, Qi Meng, Wenwei Zhang, Ge Zhang, Pei Liu, Jinghui Chen, Cheng Zhou, Ze He, Weixiao Wang, Jianyong Zhang
article en

Abstract

Abstract Developing high-performance magnesium metal batteries is hindered by sluggish Mg2+ diffusion kinetics and the structural instability of conventional cathodes. Here, we propose a design principle for organic cathodes by regulating polymer spatial configurations, which facilitates multidirectional Mg2+ transport and enhances structural robustness. Three poly(perylene diimide) (PDI)-based polymers, namely linear pPDI, zigzag mPDI, and layered oPDI, were synthesized to systematically investigate the structure–function relationship. The oPDI cathode, featuring a highly ordered two-dimensional layered configuration, forms an interconnected three-dimensional Mg2+ transport network, in striking contrast to the one-dimensional interchain hopping confined in pPDI and mPDI. By integrating multiscale experimental characterizations with density functional theory calculations, we reveal that oPDI enables rapid Mg2+ diffusion, minimizes structural distortion, and exhibits highly reversible carbonyl redox chemistry. Consequently, oPDI exhibits enhanced rate capability, durable cycling performance (92% retention over 1000 cycles), and wide-temperature adaptability from −20 to 50 °C. Furthermore, Mg||oPDI pouch cells also maintain stable cycling performance, demonstrating the potential for practical implementation. This work presents spatial configuration engineering as an effective strategy for designing high-performance organic cathodes and advances the development of safe, scalable, and temperature-resilient magnesium batteries.

ACS Nano
Hong Kong Polytechnic University (HK), Wuhan University of Technology (CN), University of Cambridge (GB)
Openalex Percentile: Top 20%
Advancements in Battery Materials
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