SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4232-1
Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3777-0
Optically clear adhesives (OCAs) are critical for next-generation optoelectronic systems, yet their end-of-life management remains a sustainability challenge. Here, we report a debondable and robust polyurethane (PU)-based OCA that integrates both mechanical and chemical recyclability. The PU-based OCA exhibits high optical transparency (>90% transmittance from visible to near-infrared), strong adhesion to glass and polymeric substrates (bonding strength up to 5.0 MPa), and thermally sensitive H-bonding interactions that enable on-demand deadhesion at elevated temperatures. This capability facilitates non-destructive detachment of functional assemblies, promoting component reuse and material recycling. The adhesive demonstrates excellent mechanical properties, including ductility and strength, and outperforms several commercial optical adhesives in key performance metrics. Its straightforward synthesis and industrial scalability make it a promising solution for advancing circular economy principles in optoelectronic device manufacturing. The work addresses critical bottlenecks in balancing mechanical performance, adhesion/detachment, and recyclability, offering a transformative approach to sustainable advanced manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3851-3
Aqueous zinc-ion batteries (AZIBs) face critical challenges from zinc anode instability, including corrosion, hydrogen evolution reaction (HER), parasitic byproduct formation, and uncontrolled dendrite growth. To address these issues, we developed a multifunctional cerium-based metal-organic framework (Ce-MOF) coating for zinc anodes. The coating features an ordered porous structure and inherent properties that mitigate HER, suppress side reactions, and inhibit dendrite formation. Symmetric cells using Ce-MOF/Zn demonstrated exceptional cycling stability for over 2060 h at 0.5 mA cm−2 with a low hysteresis polarization of 26 mV. In full cells with an I2@AC cathode, the Ce-MOF/Zn||I2@AC achieved outstanding cycling stability of 28,550 cycles at 5 A g−1, with 91% capacity retention (109.6 mAh g−1). Through integrated characterization employing in-situ optical microscopy, ex-situ XRD, SEM, and DFT calculations, we elucidated the multifunctional mechanism: the Ce-MOF coating facilitates preferential (002)-oriented Zn deposition to suppress dendrites, reduces Zn2+ desolvation energy to enhance deposition kinetics, and modulates interfacial chemistry to mitigate HER and corrosion. This work establishes Ce-MOF coatings as a simple yet powerful strategy for developing high-performance zinc anodes, providing critical insights for advancing practical AZIB technologies.