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/s40843-025-3882-y
Organic semiconductor crystals with well-defined morphologies are highly desirable for high-performance optoelectronic devices, yet precise control over their growth remains a challenge. Here, a novel donor-acceptor (D-A) molecule, TQDPT, has been successfully developed, featuring a rigid π-conjugated acceptor core composed of thiazoloquinoxaline and naphthalene, coupled with phenylphenothiazine donors. This study presents a temperature-mediated crystallization strategy for precisely controlling the morphology and carrier transport properties of TQDPT single crystals. By systematically investigating the growth kinetics across a controlled temperature range (15–35°C), we reveal a distinct transition from needle-like structures to plate-like crystals, with tunable average widths spanning from around 2.8 to 30.1 μm. This morphological evolution is driven by temperature-dependent molecular diffusion and nucleation kinetics. Significantly, the plate-like crystals grown at 25°C exhibit an order-of-magnitude enhancement in mobility compared to needle-like counterparts, while higher temperatures of 35°C yield broader crystals with improved carrier mobility and device stability. This work highlights the critical role of temperature as a pivotal parameter in the dimensional and electronic optimization of organic crystals, offering an attractive approach to optimize functional materials for advanced optoelectronics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510041
This study presents a full-scale engineering practice of retrofitting an idle upflow anaerobic sludge blanket (UASB) reactor into an aerobic granular sludge (AGS) system for treating low-strength municipal wastewater. The design capacity was 20,000 m3/d (maximum 24,000 m3/d), achieving separate treatment of industrial and domestic wastewater to reduce operational costs. Systematic analysis covered hydraulic capacity enhancement, effluent quality, pollutant removal efficiencies, sludge granulation progress, and operational costs. Results showed rapid start-up: the system reached 75% of design capacity by day 10 and 90% by day 26. During a 4-month operation, average removal efficiencies for COD, NH4+-N, TN, and SS were 83.2%, 97.0%, 75.9%, and 94.4%, respectively, even under low influent BOD5/TN ratios (typically below 4). Granulation progressed quickly: by day 44, average particle size was 2.6 times that of the inoculum and over 4 times that of flocs, with granules (>200 μm) accounting for 17.3%; by day 110, these values increased to 3.2 times and 5 times, with granule proportion reaching 33.4%. Compared to the previous year (June–August), the AGS process reduced electricity consumption, chemical consumption, and sludge production by 77.3%, 25.4%, and 30.4%, respectively, while saving 65.6% of footprint. This ten-thousand-ton case provides a practical basis for AGS technology application in China.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3944-9
Hard carbon (HC) is a promising anode material for sodium-ion batteries (SIBs) but suffers from low initial Coulombic efficiency (ICE) and unstable solid electrolyte interphase (SEI). Here, we report a dual-functional strategy combining surface engineering and solution chemical pre-sodiation. A graphitic carbon coating on HC acts as a conductive buffer network and shields surface defects, while sodium biphenyl (Na-Bp) pre-sodiation drives sodium ions into the material via a potential difference, inducing a pre-SEI layer that matures into a thin, dense, NaF-rich inorganic SEI during cycling. This approach compensates for irreversible sodium loss and enhances cycling stability. The pre-sodiated electrode (pCH4-HC) achieves an ICE of 99.5% and a reversible capacity of 321.7 mAh g−1, compared to 54.2% for untreated HC. Long-term cycling shows 74.0% capacity retention after 1000 cycles at 300 mA g−1. In full-cells with NaNi1/3Fe1/3Mn1/3O2 (NFM) cathode, pCH4-HC||NFM delivers 81.9 mAh g−1 after 100 cycles, demonstrating excellent stability and rate performance. This dual-strategy approach validates the adaptability of pre-sodiation technology for high-performance SIBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3843-9
Lignocellulose-based electromagnetic interference (EMI) shielding materials are gaining prominence across multiple sectors, driven by the growing EMI issues associated with rapid advances in communication technologies and electronic devices. These materials have demonstrated significant superiority over traditional EMI shielding solutions, which are often hampered by high cost and environmental concerns. This review emphasizes the excellent potential of lignocellulose as a cost-effective and flexible alternative to deliver the hierarchical structures and functional properties that qualify it for EMI shielding applications. The underlying EMI shielding mechanisms are then elucidated, with a focus on the benefits conferred by lignocellulose in such material systems. Furthermore, typical fabrication strategies for lignocellulose-based EMI shielding materials are comprehensively summarized, along with a discussion of their emerging applications in diverse scenarios. Finally, the challenges encountered in developing lignocellulose-based EMI shielding materials and their significant prospects for future boosting high-performance design and application are also outlined. The insights presented herein are expected to promote the development of efficient and green lignocellulose-based EMI shielding materials that meet the evolving demands of modern society.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4118-0
Polymer composite dielectrics are key materials for high-temperature film capacitors, yet their energy storage capability is severely constrained at elevated temperatures. Molecular fillers that simultaneously integrate deep-level trapping (high electron affinity, Ea), strong insulation (large bandgap, Eg), and high thermal stability are rarely available, posing a major challenge for improving high-temperature energy storage performance. To address this challenge, we screen and identify hexaazatriphenylene hexacarbonitrile (HAT-CN) as a promising candidate that fulfills the above critical requirements from numerous commercial organic molecules. When incorporated into a high glass transition temperature (Tg) polymer fluorene polyester (FPE), the resulting all-organic composite exhibits simultaneously suppressed high-temperature conduction loss and preserved mechanical robustness. Consequently, the optimized composite achieves record-high discharged energy densities of 7.31 J cm−3 at 150 °C and 6.14 J cm−3 at 200 °C (η≥90%) with a low cost and scalable process. This work demonstrates that the filler design based on synergistic key properties provides a potent pathway to break the longstanding high-temperature performance bottleneck in polymer dielectrics.