SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4206-6
Precise patterning of highly ordered organic semiconductor (OSC) thin-film arrays is critical for next-generation electronics. We report a ladder-like polysilsesquioxane (LPSQ) strategy to synthesize two functional analogs with tunable surface energies and robust dielectric properties. These LPSQ dielectrics, functionalized with alkyl or fluoroalkyl side chains, serve dual roles as gate insulators and patterning layers to guide blade-coating of 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT). This approach yields highly aligned arrays suitable for three-dimensional integration in flexible electronics. Synergistic combination of dense LPSQ dielectric packing and aligned semiconductor domains leads to excellent organic thin-film transistor (OTFT) performance, achieving approximately four-fold improvement in field-effect mobility compared to conventional silicon oxide dielectrics. Patterned LPSQ dielectrics enable high-resolution C8-BTBT patterning on plastic substrates, supporting 4-inch-scale 3D integration of flexible logic circuits, including inverters (voltage gain >100), NOR gates, and NAND gates. This work provides a scalable route to high-performance, large-area flexible organic circuits.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4429-9
The capture of carbon dioxide (CO2) from dilute streams, such as ambient air or flue gas, is a critical step toward mitigating anthropogenic emissions. While metal-organic frameworks (MOFs) featuring zinc-hydroxide (Zn–OH) sites have shown promise for CO2 binding through bicarbonate formation, their performance is often limited by the spatial arrangement of these active sites. In this work, we demonstrate a reticular chemistry strategy to program the spatial relationship among Zn–OH sites within a shared cavity, moving beyond simple surface area or site density optimization. By designing two isoreticular MOFs, NU-6000 and NU-6001, with distinct pore environments, we achieve differential CO2 adsorption behaviors. Notably, NU-6000-OH, which features a confined cage structure, exhibits significantly enhanced CO2 uptake at low pressures (0.4 mbar) compared to NU-6001-OH, with a site efficiency that surpasses representative MOFs. Structural characterization, including single-crystal X-ray diffraction, reveals the formation of Zn-bound bicarbonate species, confirming the cooperative binding mechanism. This work highlights the importance of the second coordination sphere in governing molecular recognition and suggests that programmed microenvironments could be extended to catalytic applications, such as CO2 reduction, where intermediate stabilization and proton transfer are crucial. Our findings establish reticular chemistry as a powerful tool for engineering local chemical environments, offering a pathway to design advanced sorbents and catalysts with tailored functionalities.
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/s40843-025-3590-8
Solid polymer electrolytes (SPEs) are promising for safer, high-energy solid-state lithium batteries, yet they suffer from low ionic conductivity (10^-5–10^-6 S/cm) and low lithium-ion transference numbers (t_Li+ ≈ 0.2) due to sluggish Li+ diffusion and incomplete salt dissociation. Polyethylene oxide (PEO) hosts exhibit high crystallinity, restricting conduction to amorphous domains, and a narrow electrochemical stability window (~3.6–3.8 V), limiting compatibility with high-voltage cathodes. This study introduces nanoscale Lewis-acid fluorides (e.g., AlF3, 5–10 wt%) into PEO–LiTFSI to address these limitations. The additive preferentially binds TFSI− anions, enhancing salt dissociation and transference number; disrupts PEO crystallinity, increasing amorphous content and segmental mobility; and forms a LiF-rich interphase that suppresses dendrites and parasitic reactions. Symmetric Li|Li cells with AlF3 cycled >3600 h without short-circuit, versus ~550 h for neat PEO. The approach extends to other polymers (polycarbonates, PVDF-HFP) and metal systems (Na, Zn, Mg), promising room-temperature conductivities beyond 10^-4 S/cm, near-unity cation transport, and dendrite-free cycling. This work establishes Lewis-acid fluorides as a versatile strategy to transform polymer electrolytes into actively engineered media for high-performance solid-state batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3717-6
Poly(ethylene oxide) (PEO)-based all-solid-state polymer electrolytes (SPEs) hold significant promise for high-specific-energy and high-safety Li batteries, yet suffer from poor mechanical robustness and low Li+-conducting efficiency. Aramid nanofibers (ANFs), with exceptional mechanical strength and abundant intramolecular/intermolecular interactions, are effective additives, but their strictly symmetric interchain interactions generate a highly ordered hydrogen-bond network, producing inert aggregates that compromise electrolyte stability. Here, we construct a poly(ethylene glycol) (PEG)-mediated asymmetric interaction between ANF chains. PEG chains introduce weaker H-bonding acceptor sites, higher steric hindrance, and abundant lithiophilic groups, simultaneously disrupting strong symmetric ANF-ANF interactions and creating rapid Li-ion channels. The resulting electrolyte maintains excellent mechanical properties (yield stress of 3.25 MPa) and enables stable cycling of Li||Li symmetric cells for over 1600 h with low polarization voltage. In LCO||Li cells, the electrolyte achieves a capacity retention of 82.7% after 300 cycles at 1 C, markedly higher than the unmodified counterpart (35.5%). This synergistic optimization of interfacial compatibility and mechanical performance demonstrates a practical route toward safe, high-energy-density all-solid-state polymer batteries.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508081
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.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509026
Rocky desertification poses a severe threat to ecosystem function in karst regions of southern China. This study, conducted in Jianghua Yao Autonomous County, Hunan Province, investigated the adaptive responses of Paulownia fortunei to rocky desertification habitats and its subsequent effects on soil properties. Leaf structural and physiological parameters were measured, alongside soil physicochemical properties. Results demonstrated that P. fortunei enhanced its adaptability through increased leaf thickness (upper epidermis +50%, total +27.38%), palisade tissue thickness (+22.45%), elevated chlorophyll a (+3.55 mg·g−1) and chlorophyll b (+1.39 mg·g−1) contents, and upregulated activities of superoxide dismutase, catalase, and peroxidase. Planting P. fortunei significantly improved soil structure and fertility: soil bulk density decreased by 0.57 g·cm−3, total porosity increased by 2.41% (0–5 cm) and 3.35% (5–10 cm), field water capacity rose by 18.63% and 18.87%, capillary porosity increased by 11.45% and 14.19%, and soil organic matter content improved from Grade IV to Grade II. These findings indicate a synergistic 'plant adaptation–soil improvement' feedback mechanism, highlighting the potential of P. fortunei for ecological restoration of rocky desertification areas.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025092801
Urban river water quality is critically influenced by outfall discharges, yet the seasonal dynamics of dissolved organic matter (DOM) and its linkage to water quality remain poorly constrained. This study collected outfall water samples seasonally during 2023–2024 along the Nanfei River and Banqiao River in Hefei, Anhui Province. Parallel factor analysis of excitation-emission matrices identified three fluorescent components: fulvic acid-like C1, tryptophan-like (protein-like) C2, and terrestrial humic-like C3. Seasonal variations were pronounced: protein-like C2 dominated in winter and spring, whereas summer and autumn showed lower C2 proportions due to rainwater dilution and urban nonpoint source runoff inputs. Water quality indices decreased in summer and autumn, primarily attributed to dilution by rainfall runoff. Fluorescence index (FI > 1.9) and biological index (BIX > 1.0) indicated predominantly autochthonous DOM sources. During summer and autumn, humification index (HIX) and specific UV absorbance (SUVA) increased, while spectral slope ratio (SR) decreased, suggesting enhanced terrestrial and urban runoff influence. Significant positive correlations were observed between protein-like C2 and terrestrial humic-like C3 with water quality parameters, indicating their utility as precise indicators of pollution sources and seasonal water quality variations. These findings provide a scientific basis for integrated management of urban outfalls.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509120
The 'Zero-Waste City' initiative, centered on source reduction, resource utilization, and safe disposal of solid waste, aims to minimize environmental impact. To quantitatively assess its carbon reduction contribution, this study took Mianyang as a case, systematically collecting data on solid waste generation, utilization, and disposal across industrial, agricultural, and other sectors from 2021 to 2024. Employing an improved WARM model and emission factor method, and incorporating generation, utilization, and disposal intensities, the carbon reduction benefits before (2021–2022) and after (2023–2024) the initiative were evaluated. Results show that despite significant improvements in comprehensive utilization and safe disposal rates, total solid waste generation increased, leading to a net negative carbon effect of -127.6×10^4 tCO2eq based on absolute quantities. However, after stripping economic and population growth factors, intensity-based accounting revealed a cumulative reduction of 10.8×10^4 tCO2eq, demonstrating significant synergistic benefits. The industrial sector contributed the most, with a reduction of 40.2×10^4 tCO2eq, driven by green transformation and enhanced utilization capacity. Conversely, the rising intensity of domestic solid waste generation resulted in a negative benefit of -46.1×10^4 tCO2eq, highlighting a key area for future improvement. The study underscores the necessity of considering both intensity and absolute quantity dimensions in evaluating rapidly developing cities. These findings provide practical evidence and reference pathways for advancing 'Zero-Waste City' construction and synergistic pollution reduction and carbon mitigation under the 'dual carbon' goals.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511021
Phosphate-solubilizing microorganisms (PSM) can immobilize cadmium (Cd) by dissolving insoluble phosphates and inducing the precipitation of stable Cd-phosphate minerals. However, the low bioavailability of soil phosphorus and the relatively low Cd2+ concentrations often limit the efficiency of microbial-induced phosphate precipitation (MIPP). This study proposed a combined strategy using the phosphate-solubilizing bacterium Klebsiella aerogenes Wn (Wn) and hydroxyapatite (HAP) to enhance Cd immobilization in paddy soil. Pot experiments were conducted to evaluate the effects on soil Cd availability and rice grain Cd accumulation, and the underlying mechanisms were investigated. Results showed that the combined treatment stabilized soil pH between 5.8 and 6.7 and electrical conductivity between 66 and 290 μS·cm−1, while increasing available phosphorus by 4%–67%. The optimal treatment (T4: 8 g·kg−1 HAP + 3.75×10^9 cfu·kg−1 Wn) reduced soil available Cd by 40.2% and decreased rice grain Cd to 0.0699 mg·kg−1, which is 65% below the national food safety limit. Microbial community analysis confirmed successful colonization of Wn. Pure culture experiments demonstrated that Wn induced phosphate precipitation, forming a more stable cadmium hydroxyapatite mineral [Ca3.9(Ca4.7Cd0.7)(PO4)6(OH)1.8]. The combined Wn-HAP treatment is an efficient strategy for remediating Cd-contaminated farmland, with significant potential for ensuring agricultural product safety and promoting soil remediation.