Power Automation Equipment•2026•DOI: 10.16081/j.epae.202605005
The rapid proliferation of inverter-based renewables in new-type power systems has exposed the inadequacy of conventional point-based regulation capability assessments, which evaluate a single operating point and fail to capture the temporally coupled feasible space required for scheduling and resource allocation. This paper introduces the temporal regulation domain (TRD) as a global construct that maps all feasible system states satisfying intertemporal constraints into an observation space. A compact TRD model is formulated incorporating ramping, state-of-charge, power balance, security, and regulation cost budget constraints. Topological analysis establishes that the TRD is bounded, closed, and monotonically non-decreasing with respect to the cost budget. To overcome the curse of dimensionality in boundary characterization, a prior-constraint-guided deep neural network is developed, embedding monotonicity priors into the loss function. Simulations on a modified IEEE 118-bus system demonstrate that the proposed method efficiently and accurately delineates high-dimensional TRD boundaries. The TRD expands in a stepwise manner with regulation cost investment, exhibiting diminishing marginal returns; identifying the stepwise growth point provides a reliable reference for cost optimization. As renewable penetration increases, the TRD follows a steep-rise, plateau, and sharp-drop pattern, enabling identification of critical penetration thresholds to guide renewable deployment without violating security boundaries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4192-y
Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3582-9
Perovskite quantum dots (PQDs) hold great potential for brain-like neuromorphic computing. However, the development of PQDs-based synaptic devices is hindered by interfacial defects and limited stability. Here, we demonstrate a high-performance Cs2AgBiBr6 QDs/organic single crystal heterojunction synaptic device, fabricated via a novel space-confined vertical growth technique combined with a polymer-free transfer process. Vertically grown organic single crystals enable superior carrier mobility and facilitate the formation of low-defect interfaces with PQDs. The heterojunction exhibits remarkable photosensitivity (7.22 × 10^5 at 425 nm) and detectivity (2.15 × 10^15 Jones), owing to the strong optical absorption of PQDs coupled with the superior charge transport characteristics of organic single crystals. Notably, the device achieves dual-functional light adaptation, emulating synaptic behaviour under blue light while exhibiting photo-switching under green/red light. This unique capability enables smart blue-light hazard protection. This work not only provides a versatile platform for high-performance PQDs-based synaptic devices but also advances the development of brain-inspired neuromorphic systems for next-generation computing and intelligent sensing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3642-4
High-density glass scintillators are promising alternatives to crystals for next-generation radiation detection due to their low cost, excellent physical and chemical stability, and processability. In this study, a series of Ce3+-activated gadolinium gallium borosilicate (GGBS x) glasses were synthesized via vacuum melt-quenching. With increasing Gd2O3 content, glass density increased from 5.86 to 6.05 g/cm3, and molar volume from 36.43 to 39.79 cm3/mol. Extended X-ray absorption fine structure (EXAFS) analysis revealed that in GGBS 1 glass, Ce3+ exclusively adopts a hexahedral [CeO6] configuration, while Gd3+ exhibits both hexahedral and octahedral coordination with a bond length of 2.35±0.1 Å and Debye-Waller factor σ2 of 0.0122±0.0015 Å2. As Gd2O3 content increased, shallow trap depth rose from 0.804 to 0.858 eV, while deep trap depth first increased from 0.948 to 1.434 eV then decreased to 1.010 eV. GGBS 1 glass exhibited high transmittance (~80%) in the visible range and a photoluminescence quantum yield of 78.4%. Under X-ray irradiation, its X-ray excited luminescence intensity reached 128.5% of that of Bi4Ge3O12 (BGO) crystal, with a spatial resolution of 29.1 lp/mm, approaching the highest reported for glass scintillators. Under γ-ray excitation, it achieved a light yield of 1058 photons/MeV and an energy resolution of 23.7% at 662 keV. These results indicate that GGBS 1 glass scintillator warrants further development for applications in X-ray imaging and γ-ray spectroscopy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3449-5
The escalating demand for high-performance lithium-ion batteries (LIBs) in portable electronics and electric vehicles has driven extensive research into advanced electrolytes. Ionic liquids (ILs) and their derived electrolytes, including poly(ionic liquids), ionogels, and IL-functionalized systems, offer significant potential for enhancing the safety and electrochemical performance of LIBs due to their unique properties such as non-volatility, wide electrochemical windows, and excellent thermal stability. These properties enable safer, high-energy, and long-lasting batteries. This review conducts a thorough analysis of the physicochemical properties of ILs and their versatile applications in electrolytes, particularly emphasizing their adaptability to fulfill the specific needs of different battery systems. In liquid electrolyte systems, ILs can function as solvents, interfacial modifiers, and critical components for constructing artificial solid electrolyte interphase (SEI). In (quasi-)solid-state electrolyte systems, ILs can be polymerized to form poly(ionic liquid)s or integrated with organic, inorganic, or composite materials to develop IL-based electrolytes, demonstrating multifunctional electrochemical performance. Finally, the review critically examines the challenges and opportunities in this field, offering insightful perspectives for future advancements.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3927-9
The mechanical properties of as-cast TiAl alloys are severely limited by their coarse as-cast microstructure. This study proposes a low-temperature pre-deformation heat treatment to refine the microstructure of an as-cast Ti-47Al-2Nb-2Cr alloy. The process involves pre-deformation below the eutectoid temperature followed by heat treatment in the α+γ phase field, yielding two distinct microstructures: duplex (DP) and nearly lamellar (NL). The average lamellar colony size was reduced to 5.3% and 20% of the as-cast size for DP and NL structures, respectively. Microstructural evolution analysis reveals that the decomposition of coarse lamellar colonies and the formation of fine grains are governed by γ recrystallization, γ→α phase transformation, and α recrystallization. Remnant colonies after deformation are completely eliminated by subsequent heat treatment, enhancing microstructural homogeneity and mechanical properties. The DP alloy exhibits an ultimate tensile strength (UTS) of 537 MPa and an elongation (EI) of 6.8% at 800°C, representing increases of 44.7% and 518.2% over the as-cast alloy, respectively. Analysis of crack propagation and deformation mechanisms indicates that grain refinement and lamellar structure refinement contribute to improved deformation ability. This work provides a viable pathway for optimizing as-cast TiAl alloys for high-temperature applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3926-0
Chirality is a fundamental determinant of molecular recognition and biological function, yet its integration into inorganic clusters remains a formidable challenge. Polyoxometalates (POMs), characterized by atomic precision, structural tunability, and versatile redox properties, provide an exceptional platform for investigating chirality at the interface of inorganic chemistry and biomedicine. Over the past two decades, substantial progress has been made in constructing chiral POM-based materials through diverse strategies, including chirality induction by external environments, intrinsic structural chirality, spontaneous symmetry breaking, and the design of self-assembled supramolecular architectures. The distinctive combination of redox activity, stability, and chirality in these systems has unlocked new avenues for biomedical applications, spanning antibacterial and anticancer therapies to potential interventions in neurodegenerative disorders. This review comprehensively overviews recent advances in the synthesis and biomedical applications of chiral POM-based materials, while outlining key challenges and opportunities that will guide future research in this emerging field.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510072
Porous structures are widely used in hydraulic and pneumatic systems for flow rectification and throttling, reducing velocity, regulating pressure, and improving flow stability. Numerical simulation is a common approach to study such flows, yet the lack of standardized parameter settings often leads to user-dependent errors. This study, based on the CFD software Fluent, systematically analyzes nine key parameters across three core stages: modeling, mesh generation, and solver settings. Under both quasi-2D and 3D configurations, the influence and underlying mechanisms of each parameter on simulation results are revealed, and a reference parameter-setting method is proposed. The method is validated against wind tunnel experiments, showing that the simulated average velocity reduction ratio γS deviates from experimental values by less than 6%, confirming its reliability and applicability. This work provides a basis for standardized parameter settings in numerical simulations of porous structures, enhancing consistency and predictive accuracy.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607018
To address the dual challenges of phosphorus resource scarcity and eutrophication control, this study proposed a sustainable waste-treats-waste strategy by preparing red-mud-modified sludge-based biochar (RMSBC) via co-pyrolysis of red mud and sewage sludge. The optimal material (RMSBC800), produced at 800 °C with a red mud-to-sludge mass ratio of 3:1, achieved a maximum phosphorus adsorption capacity of 28.57 mg/g, a 350% enhancement over unmodified biochar (SBC). Characterization (SEM, XRD, EDS, FT-IR, XPS) revealed that red mud modification increased the average pore size from 7.91 nm to 20.33 nm, reduced electronegativity, and raised the pH at point of zero charge (pHpzc) from 2.01 to 3.37. Adsorption kinetics followed the pseudo-second-order model, and isotherms fitted the Langmuir model, indicating monolayer chemisorption. The Freundlich parameter 1/n was 0.34, suggesting favorable adsorption. Mechanistic studies identified electrostatic attraction and surface precipitation as dominant, with molecular dynamics simulations confirming the critical role of Fe3O4 over Fe2O3 in adsorbing HPO4^2- due to stronger electrostatic interactions. The material retained 61% of its initial capacity after five regeneration cycles and achieved 83% phosphorus removal from real wastewater. This work demonstrates synergistic valorization of industrial wastes, offering an economically viable solution for phosphorus pollution control and resource recovery.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512052
Constructed wetlands (CWs) with conventional substrates often exhibit limited removal of nitrogen and antibiotics from secondary effluent. This study developed an iron-carbon-manganese ore (Fe-C-Mn) composite substrate CW to enhance simultaneous removal of nitrogen and tetracycline (TC). Under influent TC of 2 mg·L−1 and total nitrogen (TN) of 15 mg·L−1, the Fe-C-Mn system achieved average TC removal of 91.3%, significantly higher than the gravel control (27.2%). TN and nitrate nitrogen (NO3−-N) removals reached 71.7% and 83.3%, respectively, versus 7.8% and 1.2% in the control. Substrate analysis revealed increased surface roughness and synergistic generation of active components (Fe(II)/Fe(III) and Mn(II)), driving autotrophic denitrification and TC biodegradation/chemical degradation. Microbial community analysis indicated reduced overall diversity but selective enrichment of potential TC degraders (e.g., Trichosporon, Bacillota) and denitrifiers (e.g., unclassified_f_Rhodocyclaceae). TC degradation pathways included demethylation, hydroxylation, and ring-opening, ultimately yielding small metabolites. These findings provide theoretical and technical support for enhanced removal of antibiotics and nitrogen from secondary effluent using CWs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4044-3
Efficient sequestration of radioactive iodine species (I2, CH3I, I3−) is vital for nuclear safety and environmental protection. However, developing multifunctional adsorbents that remain effective under diverse conditions remains a significant challenge. Herein, we report two functionalized PD-COFs (PD-WS and PD-WY) with moderate crystallinity, outstanding thermal stability, and robust chemical resistance. They exhibit superior adsorption performance in both gas and liquid phases. Specifically, at 75°C, PD-WY achieves capacities of 4.88 g g−1 for I2, 1.55 g g−1 for CH3I, and 5.55 g g−1 for the I2/CH3I mixture, while high capacities are also retained at room temperature. In solution, PD-WY adsorbs up to 3.56 g g−1 of I3− in water and 2.00 g g−1 of iodine in cyclohexane. These COFs display rapid kinetics (K80% = 3.25 g g−1 h−1 for I2 and 7.89 g g−1 h−1 for I3−) and excellent selectivity. Mechanistic studies indicated that the excellent iodine affinity of PD-COFs arises from their rich electronic structures, abundant active sites, and charge transfer interactions. These findings position PD-COFs as highly promising adsorbents for nuclear waste treatment and environmental remediation.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60684-6
Tungsten trioxide (WO3) is a transition metal oxide of significant interest in heterogeneous catalysis due to its environmental friendliness, cost-effectiveness, and favorable electrical properties. The catalytic performance of WO3 is strongly dependent on its exposed crystal facets, which exhibit distinct physicochemical properties including charge separation efficiency, reactant adsorption capacity, and redox activity. These differences arise from variations in atomic arrangement, electronic structure, and surface energy. This review systematically examines the facet effect of WO3 across photocatalysis, electrocatalysis, photoelectrocatalysis, and thermal catalysis. Theoretical calculations are integrated to elucidate the intrinsic mechanisms underlying facet-dependent behavior from an atomic structure perspective. The paper synthesizes general rules governing the WO3 facet effect across these applications, critically assesses current research limitations, and outlines future directions. Key findings highlight that facet engineering enables precise tuning of catalytic activity and selectivity, with specific facets such as {001}, {110}, and {010} demonstrating enhanced performance in various reactions. The review underscores the importance of morphology control in optimizing WO3-based catalysts and identifies challenges in achieving facet-selective synthesis and stability under operational conditions. Future research should focus on advanced characterization techniques and computational modeling to further unravel facet-dependent mechanisms and guide rational catalyst design.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-024-3310-3
Metal oxide-based flexible gas sensors struggle to achieve high flexibility, breathability, sensitivity, and thermal stability simultaneously due to the inherent constraints of traditional organic substrates. This study introduces an advanced all-inorganic, self-supporting gas sensor built on an amorphous SiO2 nanofiber substrate with interwoven Pt–SnO2–SiO2 nanofiber sensing elements. The amorphous SiO2 structure, along with the all-inorganic three-dimensional porous network, grants the Pt–SnO2–SiO2/SiO2 sensor remarkable flexibility, high breathability, and strong thermal stability. High-temperature incorporation of Pt clusters into the flexible SnO2–SiO2/SiO2 membrane significantly boosts sensitivity, achieving a 157-fold response increase to 1000 ppb NO2 at 25 °C. The sensor retains its robust response without sensitivity degradation even after 10000 bending cycles with a curvature radius (R) of 2 mm. The mechanisms behind its enhanced flexibility and sensing capabilities are thoroughly investigated. This work paves the way for developing noble metal cluster-decorated, all-inorganic, super-flexible gas sensors for high-performance wearable applications.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3466-1
The relationship between tensile and fatigue properties in Al alloys remains vague because strengthening often affects fatigue damage in many aspects. In this study, 7xxx Al alloys were strengthened solely by varying the precipitate content while keeping both the overall microstructure and damage mechanisms consistent, so as to examine the intrinsic effect of strengthening on fatigue performance. The results show that there was an increment of 100 MPa in tensile strength, while the fatigue strength remained nearly unchanged. Further analysis indicates that the strengthening had a dual-edged effect: strengthening enhanced the whole resistance to plastic deformation, while also causing strain localization. Combining our previous models associated with tensile and fatigue properties, a relationship between yield and fatigue strengths is established, which shows a first increasing and then declining trend in fatigue strength with increasing yield strength, leaving a relatively stable region in between. This explains the plateau phenomenon of fatigue strength in a middle yield strength range for high-strength 7xxx alloys.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3491-6
Binary alloys have garnered significant attention for sodium-ion battery anodes due to their ability to combine the advantages of single-phase alloys. However, these materials often demonstrate limited electrochemical performance, and the relationship between their crystallization states and sodium storage properties remains poorly understood. Here, Bi-Sn binary alloys with various compositions were synthesized via phase-separation metallurgy to explore the sodium storage properties of different crystalline structures. The results indicate that hypo- and hyper-eutectic Bi-Sn alloys readily form a dendritic primary phase at the non-eutectic interface, which aggravates structural degradation and increases internal resistance. In contrast, Bi-Sn alloys with optimized eutectic interfaces effectively control dendritic growth and reduce defects, resulting in enhanced microstructural stability and superior electrochemical performance. The eutectic p-Bi57Sn43@C anode achieves a record-high specific capacity of 470.3 mAh g−1 at 1 C and exhibits remarkable long-term cycling stability, retaining 95.2% of its capacity after 1000 cycles at 20 C. The defect-free eutectic concept presented here establishes a valuable foundation for future studies of binary and polycrystalline eutectic alloys in electrochemical applications.