SinoGreenTech Academic Portal
KD
Verified CAS / Academic Author3 Decoded Studies

Prof. Kai Du

Not explicitly stated in the provided text; likely a Chinese university or research institute.

Research Publications & English Decoded Briefs

Showing 3 publications
Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605007

Community Characteristics of nosZ-Type Denitrifiers and Their Influencing Factors in Reservoir Sediments of the Northeastern Qinghai-Tibet Plateau

Reservoirs are significant sources of nitrous oxide (N2O), a potent greenhouse gas. The nosZ-type denitrifying bacteria, which reduce N2O to inert N2, play a critical role in mitigating emissions. This study investigated the community structure, diversity, and abundance of nosZ-type denitrifiers in surface sediments (0-15 cm) from 18 reservoirs in the northeastern Qinghai-Tibet Plateau, including 10 in the Yellow River mainstem and 8 in the Huangshui River basin. Sampling occurred during dry (May 2023) and wet (August 2023) seasons. High-throughput sequencing of the nosZ gene and quantitative PCR were employed. Results showed that Proteobacteria dominated (78.91%). Paracoccus and Halomonas were biomarkers in the Yellow River mainstem. Diversity was significantly higher in the Huangshui basin (P<0.05), with no temporal difference. Gene abundance was higher in the Huangshui basin (165.24×10^5 copies/g) than in the Yellow River mainstem (34.43×10^5 copies/g), and higher in wet season (128.55×10^5 copies/g) than dry season (61.27×10^5 copies/g) (P<0.05). Redundancy analysis and hierarchical partitioning identified sediment temperature, pH, total phosphorus, and water total nitrogen as key drivers, explaining 17.14%, 16.89%, 13.83%, and 11.23% of community variation, respectively. These findings reveal significant spatiotemporal heterogeneity and provide a scientific basis for N2O mitigation in plateau reservoirs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4116-0

Amphitropic Ion Pairs Induce a Heterostructured Solid Electrolyte Interphase in Solid-State Lithium Batteries

The design of solid electrolyte interphases (SEIs) for poly(vinylidene fluoride)-based solid-state batteries has largely focused on solvent-affinity of Li+ to generate robust but ionically sluggish LiF-rich layers, inherently compromising transport kinetics. Here, we establish a paradigm based on quantifiable physicochemical descriptors (ionic potential and donor number) to guide the design of amphitropic ion pairs (AIPs). These AIPs are engineered to simultaneously tailor both the solvent-affinity and anion-affinity of Li+: a solvent-philic cation with high ionic potential (Al3+) first sequesters reactive solvents, clearing the path for a high-donor-number, lithium-philic anion (NO3−) to remodel solvation. This rationally guided, sequential mechanism enables the in situ synthesis of a LiF/Li3N heterostructured SEI, where dendrite-suppressing LiF domains are seamlessly integrated with ultra-fast Li3N ion channels. This design heterogeneity effectively enhances stability and kinetics, yielding a robust and highly conductive interface. Consequently, Li|Li cells achieve >2000 h of stable cycling, and Li|LiNi0.8Co0.1Mn0.1O2 full cells surpass 600 cycles.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4123-0

Entropy-Driven Modulation Enables Atomic-Level Interactions for High-Rate Capacity Cathode Materials in Rechargeable Aqueous Aluminum-Ion Batteries

Aqueous aluminum-ion batteries (AAIBs) are promising for large-scale energy storage due to safety, sustainability, and theoretical high capacity. However, sluggish electron/ion transport in conventional cathodes limits rate capability. Here, we first propose high-entropy engineering of metal oxides (HEOs) as cathodes in AAIBs, leveraging the 'cocktail effect' and abundant electron transport pathways to enhance rate-capacity. Atomic-level interactions between different metal atoms broaden the d-band with reduced electronic level degeneracy, facilitating rapid electron transport, achieving one of the best rate capabilities (119.4 mAh g−1 at 10.0 A g−1) among metal-oxide cathodes. The disordered layered oxides formed with a high-entropy framework alleviate electrostatic repulsion between aluminum ions and the fixed lattice, mitigating structural degradation and imparting excellent cycling stability (over 95.1 mAh g−1 after 500 cycles at 2.0 A g−1). The optimized HEO-Cr cathode (Fe0.6Co0.6Ni0.6Mn0.6Cr0.6O4) exhibits outstanding rate performance and cycling stability. DFT simulations and electrochemical tests reveal that multi-transition metal incorporation, bandgap narrowing, and unique lattice structure drastically enhance electron transport efficiency. The layered phase formed after cycling, based on a high-entropy framework, overcomes challenges from high charge density aluminum ions, significantly enhancing cycling stability. This work paves the way for high-performance AAIBs and other aqueous multivalent metal ion batteries by rationally designing high-entropy engineering.

Prof. Kai Du | Publications & Academic Profile | SinoGreenTech | SinoGreenTech