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Verified CAS / Academic Author10 Decoded Studies

Prof. ZHANG Bowen

Key Laboratory of Energy Heat Conversion and Process Measurement and Control, Ministry of Education, School of Energy and Environment, Southeast University, Nanjing 211189, China

Co-Affiliations:State Key Laboratory of Regional Environment and Sustainability, School of Environment, Beijing Normal UniversityHanjiang Normal University, Shiyan, Hubei, ChinaCollege of Energy and Environment, Key Laboratory of Clean Energy of Liaoning, Shenyang Aerospace University, Shenyang 110136, China

Research Publications & English Decoded Briefs

Showing 10 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4426-y

Advances toward stress-assisted degradation of biomedical Mg alloys

Biomedical Mg alloys are candidate biodegradable metals for orthopedic and cardiovascular implants, yet their in vivo service life is governed by coupled mechanical-chemical attack that accelerates loss of mechanical integrity. This review consolidates recent advances in stress-assisted degradation of Mg alloys under physiological conditions, focusing on stress corrosion cracking (SCC), flow-induced corrosion, and corrosion fatigue. Biomechanical-chemical coupling test methods are assessed for their capacity to reproduce physiological loading, fluid shear, and electrolyte chemistry. Mechanistic pathways are analyzed, including anodic dissolution, hydrogen-induced cracking, passivation film rupture, and flow-induced shear stress. Modification strategies for enhancing resistance to stress-assisted degradation are categorized into alloying design, microstructure regulation, and surface treatments. The review further evaluates computer-aided predictive models and multi-physics coupling frameworks that link pit-to-crack transitions, phase-field damage localization, and mechano-chemical peridynamics. Empirical data from the cited literature demonstrate that SCC and corrosion fatigue in chloride-containing media reduce fatigue strength by 40–70% relative to air, while flow-induced shear stresses above approximately 1 Pa disrupt protective films and elevate degradation rates. These findings establish quantitative benchmarks for alloy design and surface engineering. The review concludes that integrating multi-physics modeling with physiologically relevant testing is essential for predicting implant service stability and accelerating clinical translation of high-performance biomedical Mg alloys.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4322-4

Ultrafast Scintillation Enabled by Exciton Localization in High-Entropy Fluoride Crystals

Ultrafast scintillators with low-nanosecond emission are essential for next-generation high-rate X-ray and particle imaging. Although Ce3+-activated scintillators inherently exhibit fast response characteristics, conventional Ce3+-doped hosts rarely achieve low-nanosecond ultrafast decay. Here, we report a high-entropy fluoride scintillator (HEFS), Ce:LaGdCaSrBaF12 (Ce:LGCSB), in the form of bulk single crystals. The severe lattice distortion arising from multi-cation disorder induces exciton localization and effectively suppresses exciton diffusion. Through the rapid relaxation of localized excitons, the high-entropy Ce:LGCSB single crystals deliver a decay time of 1.23 ns with a 94.6% fast-component contribution and without any noticeable slow component. Through first-principles calculations, spectroscopic characterization, and transient dynamics analysis, we reveal that the ultrafast response originates from accelerated Frenkel exciton (FE) recombination enabled by the high-entropy environment. This work establishes entropy-engineered fluorides as promising ultrafast scintillator platforms and proposes a general strategy for extending sluggish diffusion effects to the excitonic scale, offering new opportunities for improving scintillation timing performance.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61068-2

Laser-Synthesized Metastable Bismuth Nanocrystals Chemically Bonded to Reduced Graphene Oxide for Excellent Lithium Storage

The poor interface contact between bismuth (Bi) nanoparticles and reduced graphene oxide (rGO) impedes ion/electron transfer in lithium-ion battery anodes. We report an innovative fabrication of ultrafine Bi nanocrystals chemically bonded to rGO (Bi-rGO) via liquid-phase pulsed laser irradiation followed by solvothermal reaction with graphene oxide. Metastable Bi nanocrystals synthesized by laser (5.5 nm) undergo lattice restructuring and shrink to a record-small size of 2 nm during solvothermal combination, the smallest reported for Bi/C composites. The Bi nanocrystals are uniformly anchored onto rGO nanosheets via strong Bi–O–C bonds, which suppress particle aggregation, establish efficient ion/electron transport channels, and alleviate volume expansion during lithiation. The Bi-rGO-2 anode, comprising 2 nm Bi nanocrystals, delivers an exceptional reversible capacity of 586.7 mAh g−1 over 500 cycles at 100 mA g−1, nearly doubling that of a Bulk Bi/rGO composite anode (318 mAh g−1). Theoretical calculations confirm higher binding energy between Bi and rGO at smaller particle sizes, while kinetic analysis reveals accelerated Li+ diffusion. This work provides a scalable route to high-performance alloy anodes through metastable nanocrystal engineering and covalent interface coupling.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(25)60613-X

Influence of Preparation Method on the Denitration Performance of Co-Modified Ce/TiO2 Catalysts

This study systematically optimized the preparation of Co-modified Ce/TiO2 catalysts and investigated the effects of preparation method and Co loading on their low-temperature denitrification activity. The sol-gel method with a Co/Ti mass ratio of 0.025 (Ce-Co0.025/TiO2-SG) yielded superior performance compared to impregnation and co-precipitation methods. The catalyst maintained NO conversion above 95% in the 225–350 °C range and exhibited high N2 selectivity. Characterization via BET, XRD, XPS, H2-TPR, and in situ DRIFTS revealed that the enhanced activity was attributed to abundant surface oxygen vacancies, a high proportion of Ce3+ species, and prominent acidic sites. The catalyst followed the Eley-Rideal mechanism, effectively inhibiting nitrate intermediate formation and promoting NO-to-NO2 oxidation. This work provides a reference for developing efficient low-temperature denitrification catalysts for industrial applications such as cement production, which emitted 722,000 tons of NOx in 2020, accounting for 17.3% of industrial emissions.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605010

Colonization Requirements of Submerged Macrophytes Based on Underwater Light Environment

The underwater light environment is a critical limiting factor for the colonization of submerged macrophytes and the ecological restoration of shallow lakes. Previous studies rarely quantified the contribution of aquatic environmental factors to the water quality–underwater light–macrophyte relationship, nor did they comprehensively consider factor correlations or establish thresholds for macrophyte colonization. This study, conducted in a typical national wetland nature reserve (Hongze Lake), measured photosynthetically active radiation, light attenuation coefficient (Kd), euphotic depth (Zeu), water transparency (SD), total suspended solids (TSS), chlorophyll-a (Chl-a), total nitrogen (TN), and total phosphorus (TP). A simulation model for Kd was developed, spatial distributions of environmental factors were analyzed, and contribution rates to light attenuation were quantified. Results showed that the mean Kd was 10.31±3.76 m⁻¹, and the mean Zeu (0.53±0.24 m) was lower than the mean water depth (0.94±0.29 m), with a spatial pattern of shallower Zeu in the west and deeper in the east. TSS and Chl-a were the primary direct influencing factors, while TN acted mainly indirectly. To achieve effective macrophyte colonization under average water depth conditions, thresholds were determined: Zeu ≥ 0.94 m, SD ≥ 0.41 m, Kd ≤ 4.95 m⁻¹, and Chl-a ≤ 3.8 μg/L. These findings provide quantitative guidance for lake restoration and water quality management.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605008

Carbon Footprint and Driving Factors of Vegetable Production in China: A Life Cycle Assessment at Provincial Scale

Vegetable production is a significant source of greenhouse gas emissions, yet national-scale assessments comparing cultivation modes remain scarce. Using life cycle assessment (LCA) and provincial statistical data from 2018–2022 across 27 provinces, we quantified the carbon footprint (CF) per unit yield for 10 typical vegetables under open-field and facility farming. Results show annual average CFs range from 65.5 to 293.8 g CO2-eq/kg, with open-field radish lowest and open-field green bean highest. Spatial heterogeneity is pronounced, especially for facility eggplant and open-field green bean. CF exhibits distinct clustering: fruit vegetables emit more in central-southern open-field and northern facility systems, while leafy vegetables follow a 'south-high, north-low' pattern. Fertilizer production and field N2O emissions dominate, contributing up to 80.4% of total CF. In facility systems, irrigation electricity and agricultural film inputs become significant, reaching 57.87% contribution. These findings support region- and crop-specific mitigation strategies for China's agricultural dual-carbon goals.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202508081

Low-Temperature Thermal Remediation of Naphthalene-Contaminated Soil Using Cu–CeOx/TiO2 Trimetallic Catalysts

Traditional soil thermal remediation requires high temperatures (>300 °C), which can damage soil structure, increase energy consumption, and elevate carbon emissions. This study developed a Cu–CeOx/TiO2 trimetallic catalyst to enable low-temperature thermal remediation of naphthalene-contaminated soil. Using nano-TiO2 as a support, catalysts with varying Cu/Ce ratios were prepared via impregnation-calcination. Material characterization (XRD, TEM, XPS, etc.) revealed that Cu and Ce incorporation induced crystal defects in TiO2, enhancing lattice oxygen activity and electron mobility, thereby generating more oxygen vacancies and hydroxyl radicals. Performance evaluation using a TGA-GC-FTIR-MS platform showed that the catalyst with Cu:Ce = 1:1 achieved the best remediation efficiency, reducing the thermal remediation temperature from 250 °C to 211.5 °C and increasing the removal rate by an average of 19.49% compared to the non-catalyst group at the same temperature. The catalyst facilitated stepwise degradation of naphthalene into smaller organic molecules (alcohols, carboxylic acids, aldehydes) and ultimately into H2O and CO2. This work demonstrates that Cu–CeOx/TiO2 significantly lowers the energy demand of thermal remediation, offering a promising approach for low-carbon remediation of organic-contaminated soils.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202607023

Effects of Municipal Sludge Application on Composition and Microbial Communities of Mine Waste Rock Soil

The rapid population growth and accelerating urban development have made the comprehensive utilization of municipal sludge (MS) an urgent challenge. MS contains substantial organic matter and essential nutrients for crop growth, making it a promising soil amendment for the ecological restoration of mine waste rock. However, research evaluating the impact of MS application on soil health and ecological safety from a soil microbiology perspective remains understudied. Therefore, this study investigated the effects of MS and composted municipal sludge (CMS) on the ecological restoration of mine waste rock soil through pot experiments. High-throughput sequencing technology was employed to analyze changes in soil microbial community structure and diversity. Finally, network analysis and correlation heatmaps were utilized to elucidate the microbial driving mechanisms. The results indicated that after MS and CMS application, organic matter content increased from 20.38 g/kg (Level 3) to 38.52 g/kg (Level 2). The levels of available nitrogen, phosphorus, and potassium rose from Level 4, 6, 2, to Level 1, 4, 1, respectively. Fresh weight, aboveground height, root length, and stem diameter of ryegrass all increased significantly. Venn diagram and heatmap analyses indicated that lower application rates (<1.5 kg/m²) enhanced microbial community richness and diversity. This study confirms municipal sludge as an effective amendment for mine waste rock soil. It is recommended to limit application rates below 1.5 kg/m² in practical mine ecological restoration projects, with particular attention to long-term dynamics of heavy metals and salinity to ensure safe and sustainable land reuse.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60717-7

Hydrothermal Liquefaction of Alkaline Lignin with In Situ Hydrogen Supply from Formic Acid

Alkali lignin, a high-volume byproduct from pulp and paper manufacturing and biomass refining, is a promising feedstock for aromatic hydrocarbon production in liquid fuels due to its high energy density and abundant aromatic moieties. However, its highly cross-linked polymeric structure hinders efficient valorization. This work investigates catalytic conversion of alkali lignin into bio-oil under in situ H2 supply from formic acid. A series of Ni-Mo/h-BN bimetallic catalysts with varied metal ratios were synthesized by impregnation and characterized by XPS, XRD, and other techniques. The effects of reaction parameters on H2 production via aqueous-phase reforming (APR) of formic acid were evaluated. Optimal H2 yield was achieved at a formic acid-to-water molar ratio of 1:10 and a Ni/Mo atomic ratio of 3:1. H2 yield increased monotonically with temperature from 220 to 280 °C, reaching a maximum of 38.48 mmol. Subsequently, influences of reaction temperature and residence time on bio-oil production were examined. The highest heavy bio-oil yield (18.93%) and maximum relative content of aromatic hydrocarbons (13.81%) were both achieved at 280 °C. Prolonged reaction time reduced heavy bio-oil yield and aromatic hydrocarbon abundance while favoring furan derivatives. This work demonstrates good synergy between in situ hydrogen generation from formic acid and lignin hydrogenation in the temperature range 240–280 °C.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4016-3

Electromagnetic Wave Absorbing Materials Derived from Rare Earth Ions Enriched via Host-Guest Interactions in Anion Metal-Organic Frameworks

Rare earth-based electromagnetic wave (EMW) absorbing materials are promising due to their strong dielectric and magnetic loss capabilities, yet effective enrichment and utilization of rare earth ions remain challenging. Here, an anionic imidazolium-based metal-organic framework (MOF), MOZ-200, is employed to enrich multiple rare earth ions (La3+, Ce3+, Pr3+, Nd3+, Y3+) via host-guest interactions. The anionic framework uniformly confines these ions, which are converted in situ into highly dispersed high-entropy rare earth alloy nanoparticles during carbonization. The resulting HE@C composites feature a conductive, graphitized carbon matrix with abundant multi-scale polarization centers and heterogeneous interfaces, enhancing dipole polarization, interface polarization, and conductive loss. Consequently, the material achieves excellent EMW absorption in the Ku band, with a minimum reflection loss of -79.20 dB and a maximum effective absorption bandwidth of 5.23 GHz. Integrated into a polyurethane matrix, a multifunctional flexible device is realized, offering EMW absorption, photothermal heating, microwave de-icing, and hydrophobicity. This work provides a feasible strategy for rare earth ion utilization and advances the design of flexible multifunctional EMW absorbing materials.