Add BrightSurf on Google Email

In situ defect Healing suppresses Mn dissolution chain reactions in aqueous sodium‑ion cathodes

08.17.26 | Shanghai Jiao Tong University Journal Center
Apple iPhone 17 Pro

Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.


As the demand for safe, low-cost, and environmentally friendly energy storage continues to grow, aqueous sodium-ion batteries (ASIBs) have emerged as a compelling alternative to conventional lithium-ion systems. Among promising cathode materials, sodium manganese hexacyanoferrate (Mn-HCF) stands out with a high theoretical capacity of 170 mAh g -1 and an attractive operating voltage above 3.2 V. Yet its practical deployment has been severely hindered by rapid capacity fading driven by manganese dissolution—a problem that conventional strategies have only managed to delay, not solve. Now, researchers from Sun Yat-sen University, led by Professor Gongzheng Yang and Professor Chengxin Wang, have unveiled the hidden degradation mechanism and introduced a breakthrough in situ surface repair strategy that fundamentally transforms how we stabilize Mn-based cathodes.

Why This Cathode Matters

Traditional approaches to mitigating Mn dissolution—including lattice doping, surface coating, and electrolyte additives—operate on a common limitation: they merely slow the initial leaching of Mn 2+ without addressing the catastrophic secondary reactions that follow. The novel insight from this work reveals that Mn dissolution is not the end of degradation, but the beginning of a self-propagating chain reaction that actively destroys the cathode structure from within.

Innovative Design and Mechanism

Through systematic in situ and ex situ characterization, the team elucidated a previously overlooked degradation chain reaction:

To sever this chain at its source, the researchers introduced iron(III) trifluoromethanesulfonate (Fe(OTf) 3 ) into a concentrated 17.6 m NaClO 4 aqueous electrolyte. The strategy leverages two key principles:

The concentrated "water-in-salt" electrolyte further constrains Mn loss by reducing free water activity, while the Fe 3+ additive actively repairs emerging vacancies in real time—transforming passive protection into dynamic self-healing.

Outstanding Performance

The in situ repaired Mn-HCF cathode delivers exceptional electrochemical metrics:

In situ XRD and Raman spectroscopy confirmed that the Fe 3+ repair strategy fundamentally alters structural evolution: the severe cubic-to-tetragonal phase transition (4.06% volume change) in the blank electrolyte is suppressed to a modest 2.19% in the repaired system, with the tetragonal phase fraction significantly reduced. The C≡N blue shift during charging is attenuated from 75 cm -1 to 61 cm -1 , indicating alleviated Jahn–Teller distortion and stabilized cyanide frameworks.

Notably, the strategy proves broadly applicable beyond Mn-HCF. When applied to Fe-HCF cathodes, Fe(OTf) 3 similarly suppresses iron ion dissolution and extends cycle life, demonstrating its generalizability across the Prussian blue analog family.

Applications and Future Outlook

When paired with a PTCDI (3,4,9,10-perylenetetracarboxylic diimide) organic anode in a full-cell configuration, the stabilized Mn-HCF cathode achieves a high output voltage of ~1.4 V with exceptional longevity. The Fe(OTf) 3 additive is used at low concentration (≤0.2 M), costing less than 5% of the base electrolyte, making this approach highly cost-effective and scalable.

This work establishes a paradigm shift in cathode stabilization: rather than merely delaying dissolution, real-time vacancy refilling at the atomic scale halts degradation at its origin. By revealing the chain reaction mechanism and delivering a practical in situ repair solution, this research opens promising avenues for next-generation aqueous sodium-ion batteries combining high safety, low cost, and unprecedented cycling stability for grid-scale energy storage.

Stay tuned for more groundbreaking research from this collaborative team at Sun Yat-sen University!

Nano-Micro Letters

10.1007/s40820-026-02271-z

News article

In Situ Defect Healing Suppresses Mn Dissolution Chain Reactions in Aqueous Sodium‑Ion Cathodes

30-Jun-2026

Keywords

Article Information

Contact Information

Bowen Li
Shanghai Jiao Tong University Journal Center
qkzx@sjtu.edu.cn

Source

This article is based on a news release from Shanghai Jiao Tong University Journal Center. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Shanghai Jiao Tong University Journal Center. (2026, August 17). In situ defect Healing suppresses Mn dissolution chain reactions in aqueous sodium‑ion cathodes. Brightsurf News. https://www.brightsurf.com/news/LRD072O8/in-situ-defect-healing-suppresses-mn-dissolution-chain-reactions-in-aqueous-sodiumion-cathodes.html
MLA:
"In situ defect Healing suppresses Mn dissolution chain reactions in aqueous sodium‑ion cathodes." Brightsurf News, Aug. 17 2026, https://www.brightsurf.com/news/LRD072O8/in-situ-defect-healing-suppresses-mn-dissolution-chain-reactions-in-aqueous-sodiumion-cathodes.html.