From Screening to Site Control: Phytic‑Acid Mediated P‑Tuning of M–N Coordination to Balance Iodine Adsorption and Stability in Zn–I2 Batteries

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From Screening to Site Control: Phytic‑Acid Mediated P‑Tuning of M–N Coordination to Balance Iodine Adsorption and Stability in Zn–I2 Batteries
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Springer Nature Singapore
Springer Nature Singapore Springer Nature Singapore

From Screening to Site Control: Phytic-Acid Mediated P-Tuning of M–N Coordination to Balance Iodine Adsorption and Stability in Zn–I2 Batteries

Aqueous zinc-iodine batteries (AZIBs) show promise for grid-scale energy storage, but they are hampered by polyiodide shuttling, sluggish iodine redox kinetics, and irreversible active-site poisoning caused by uncontrolled adsorption. We provide a comprehensive screening of M1 (M1 = P, S, B) heteroatom dopants, and P is identified as the best candidate for achieving coordination-tuned, moderate adsorption that balances adsorption and catalytic activity while mitigating site poisoning. Using phytic acid as both the P source and an etchant, we create a universal in situ approach to core–shell single-atom catalysts (M2-P-CSNC, M2 = Fe, Co, Ni). The unique core–shell structure achieves stable confinement of polyiodides, rapid ion transport, and protection of active sites, while in situ P doping precisely regulates the local electronic environment and d-band center of the Fe–Nx active centers. In situ characterization confirms that Fe–P-CSNC has a strong reversible anchoring ability for polyiodides, which can significantly accelerate redox kinetics. The optimized Fe–P-CSNC/I2 exhibits almost no capacity decay after 20,000 cycles at a current density of 2 A g−1. This work’s facile heteroatom doping strategy for electronic modulation offers a reference for high-performance catalyst design in conversion-type energy storage systems.Kindly check and confirm the edit made in the title.1. We have checked and confirmed the edited title. 2. We found some issues with Figure 3d and have uploaded the revised image as an attachment.

As demand grows for safe, low-cost, and sustainable energy-storage technologies, aqueous zinc–iodine batteries have attracted increasing attention for large-scale energy storage. However, soluble polyiodide shuttling, sluggish iodine redox kinetics, and excessive adsorption on catalytic sites can lead to site poisoning and poor reversibility. Researchers from Yangzhou University, the Canadian Light Source at the University of Saskatchewan, Huzhou Normal University, and the Shanghai Synchrotron Radiation Facility, led by Professor Huan Pang and collaborators, have developed a phytic-acid-assisted strategy that precisely regulates single-atom active sites, achieving a balance between polyiodide confinement and reversible iodine conversion.

Why This Cathode Matters

Conventional porous carbon hosts provide limited interaction with soluble polyiodides, while excessively strong adsorption on heteroatom or single-atom sites can trap iodine intermediates and slow their subsequent conversion. Through systematic screening of B, S, and P dopants, the researchers identified phosphorus as an optimal dopant for achieving moderate adsorption. This strategy suppresses polyiodide shuttling while maintaining reversible iodine redox reactions, overcoming the conventional trade-off between adsorption strength and catalytic reversibility.

Innovative Design and Mechanism

The researchers developed a phytic-acid-assisted in-situ synthesis strategy to construct Fe-, Co-, and Ni-based P-doped core–shell single-atom catalysts. Phytic acid serves simultaneously as a phosphorus source and etching agent, enabling P doping, hierarchical cavity formation, and atomic dispersion of transition-metal sites in a one-pot process. In the optimized Fe–P-CSNC, neighboring P atoms induce electronic redistribution and geometric distortion around Fe–Nx sites, tuning the Fe electronic structure and providing moderate adsorption toward I3⁻/I2 species. Meanwhile, the porous core–shell architecture confines polyiodides and provides efficient ion-transport pathways.

Outstanding Performance

The optimized Fe–P-CSNC cathode achieves an oxidation Tafel slope of only 118 mV dec-1 and delivers 146 mAh g-1 at 5 A g-1. Its capacitive contribution reaches 87%, reflecting efficient charge-storage kinetics. More importantly, the electrode exhibits exceptional durability, showing negligible capacity decay over 20,000 cycles at 2 A g-1 with nearly 100% Coulombic efficiency. Even at 0.5 A g-1, it maintains stable cycling over 1000 cycles with a capacity decay rate of only 0.05% per cycle. After 24 h of rest, the battery retains 91.3% of its capacity, compared with 83.6% for undoped carbon.

Applications and Future Outlook

The Fe–P-CSNC cathode demonstrates practical potential beyond conventional coin-cell testing. Pouch cells show no obvious capacity degradation after 100 cycles, while three cells connected in series can continuously power a commercial LED array. More broadly, this work establishes moderate adsorption as an effective design principle for conversion-type batteries: adsorption should be strong enough to suppress intermediate shuttling, yet sufficiently moderate to enable rapid desorption and reversible conversion. The combination of phytic-acid-mediated P doping, core–shell confinement, and single-atom electronic regulation offers a promising strategy for durable Zn–I₂ batteries and other advanced conversion-type energy-storage systems.