SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4138-5
Electrocoagulation (EC) has emerged as a promising electrochemical technology for wastewater treatment, offering distinct advantages over conventional chemical coagulation and membrane processes. This review systematically summarizes recent advancements in EC, focusing on the underlying mechanisms, key operating parameters, and diverse technical applications. The EC process involves three stages: electrolytic oxidation and in-situ coagulant formation, destabilization of contaminants, and floc formation. Unlike chemical coagulation, EC requires no external chemical additives, and process control is achieved by adjusting current density, voltage, or electrode materials, enabling adaptation to varying wastewater qualities. The review highlights the influence of dissolved organic matter (DOM) on EC efficiency, as clarified by Luo et al. (Water Research, 2025). Furthermore, it discusses reactor design innovations, including continuous-flow and cascade-type configurations, and the role of current waveforms in mitigating electrode passivation. The integration of EC with membrane bioreactors and forward osmosis is also examined, demonstrating enhanced treatment performance and fouling mitigation. Key challenges, such as energy consumption and electrode scaling, are addressed, along with future research directions. This comprehensive analysis provides a critical framework for optimizing EC systems and scaling them for industrial wastewater treatment, emphasizing the need for holistic reactor design and process integration to achieve sustainable water reuse.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4290-9
Thermoelectric materials enable direct and reversible conversion between heat and electricity, offering unique advantages for waste heat recovery, solid-state refrigeration, and deep-space power systems. The performance is evaluated by the dimensionless figure of merit, zT = S²σT/κ, where S is the Seebeck coefficient, σ is the electrical conductivity, T is the absolute temperature, and κ is the total thermal conductivity. Achieving high zT requires simultaneous realization of a large power factor (S²σ) and low thermal conductivity. However, these parameters are intrinsically coupled, posing a fundamental challenge. PbTe is a representative thermoelectric material operating in the intermediate temperature range, with outstanding performance originating from its unique electronic band structure featuring multiple nearly degenerate valence band maxima near the L points. Band convergence via alloying with mono-tellurides such as MgTe, MnTe, CdTe, YbTe, SrTe, and EuTe effectively modifies the valence band structure, increasing band degeneracy and density-of-states effective mass, thereby enhancing electrical conductivity without decreasing the Seebeck coefficient. However, increasing the content of these mono-tellurides limits acceptor dopability, making conventional dopants like Na difficult to incorporate. This study demonstrates that co-doping strategies can preserve dopability while achieving band convergence and dislocation engineering, leading to significantly reduced lattice thermal conductivity and extraordinary peak zT values. The decoupling of electronic and thermal transport through this approach offers a promising route for high-performance thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4246-5
Developing organic solar cells (OSCs) processable from green solvents without additives or post-treatments is essential for sustainable manufacturing, yet high power conversion efficiency (PCE) remains difficult due to limited morphology control. Herein, we develop a new electron-deficient building block, dithiazolo[4',5':3,4;5'',4'':5,6]benzo[1,2-d][1,2,3]triazole (DTzBT), which fuses benzo[d][1,2,3]triazole (BTA) with thiazole to leverage S/N-mediated non-covalent interactions, enhance planarity and lower the HOMO. To isolate side-chain effects, two DTzBT-based donors, namely PTzMe-F (N-methyl) and PTzEH-F (N-2-ethylhexyl), have been designed and synthesized. PTzMe-F exhibits poor solubility and miscibility with L8-BO, yielding 2.64% PCE (chloroform). PTzEH-F exhibits excellent processability and favorable morphology, delivering 17.61% PCE (chloroform) and 19.17% as-cast from toluene without any additive or post-treatments. In addition, the ternary LbL device based on PTzEH-F/L8-BO:PC71BM achieved an impressive efficiency of 20.27%. Comprehensive characterization indicates that 2-ethylhexyl side chains afford optimal solubility while preserving strong intermolecular interactions and favorable phase separation. DTzBT mitigates BTA’s HOMO-raising tendency via electron-withdrawing thiazole fusion, reconciling aggregation tunability with energy-level control. These results show that precise backbone and side-chain co-design enables green-solvent, additive-free processing for high-performance OSCs, advancing sustainable photovoltaic manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3615-1
Stretchable electronics are pivotal for bio-integrated devices, soft robotics, and wearables, yet their development is constrained by single-layer architectures that limit integration density and by mechanical mismatch between rigid components and soft substrates, which curtails service life. Here, we introduce a LEGO-like modular assembly strategy to construct multilayer three-dimensional (3D) stretchable electronics. Electronic components (ECs) and self-healing polyurethane (SPU) substrates patterned with liquid metal (LM) circuits serve as the modular blocks. This design simplifies fabrication and markedly enhances 3D integration density. The combination of LM circuits and self-healing elastic substrates enables devices to withstand diverse deformations and to autonomously heal after mechanical damage. Notably, the devices can undergo multiple recycling and reuse cycles without significant performance loss. This methodology offers a new paradigm for advanced flexible electronics, addressing critical bottlenecks in integration density, mechanical robustness, and sustainability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025110501
Ultrashort-chain perfluoroalkyl substances (PFAS) exhibit high hydrophilicity, mobility, and root concentration factors, facilitating their transport and accumulation in soil-crop systems and posing phytotoxicity risks. Post-drought rehydration (PDR) is a critical water management strategy to mitigate drought effects in paddy fields. This study investigated the regulation and mechanisms of PDR on ultrashort-chain PFAS transport in paddy soils through sterilized and non-sterilized experiments, employing three-dimensional fluorescence spectroscopy, Fourier-transform infrared spectroscopy, X-ray photoelectron spectroscopy, X-ray fluorescence spectroscopy, and amplicon sequencing. Results showed that PDR increased the bioavailable fraction of ultrashort-chain PFAS in soil solution while delaying their release into overlying water. Sterilization experiments confirmed that PDR-induced compensatory migration was primarily driven by microbial activity. Geochemical analyses revealed that PDR reduced hydrophilic functional groups (e.g., hydroxyl) on soil particle surfaces and increased cation bridging sites. Microbiological sequencing indicated that PDR activated secondary metabolic pathways, enhancing microbial extracellular polymeric substances (EPS) production, which provided binding sites for ultrashort-chain PFAS. Consequently, EPS competed with soil particles for cation bridging, altering PFAS interfacial partitioning and increasing bioavailable and cation-complexed fractions in soil solution, thereby exacerbating rhizosphere exposure risk to rice. This study elucidates the coupled geochemical and microbiological mechanisms governing ultrashort-chain PFAS mobility under PDR, informing risk assessment and management in paddy agroecosystems.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605007
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.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225215
CO2 dilution is a recognized strategy for combustion control, yet its detailed effects on CH4/H2 combustion under lean conditions remain insufficiently characterized. This study numerically investigated jet diffusion flames in a triangular nozzle burner, varying CO2 mixing ratios from 0% to 40%, equivalence ratios from 0.4 to 0.9, at 300 K and 101325 Pa. The standard k-ε turbulence model and non-premixed combustion model were employed, with grid independence verified. Results showed that increasing CO2 blending reduced peak flame temperature, flame height, and average furnace temperature from 1688 K (0% CO2) to 1344 K (40% CO2). CO2 inhibited forward reactions of CO with O and OH, reducing O2 consumption. NOx emissions decreased by up to 95.5% at φ=0.7 (from 6.7×10-5 to 3.03×10-6) and 94.3% at φ=0.9, compared to pure methane. Conversely, H2 enrichment (0% to 40%) raised peak temperature from 2018 K to 2199 K and shifted the peak location closer to the burner (from 1.16 m to 0.82 m), promoting more compact flames. In CH4/H2 mixtures, CO2 still effectively reduced NOx, though the effect slightly weakened with higher CO2 ratios. Controlling CO2 blending below 30% balances NOx reduction and combustion stability. The CH4/H2/CO2 ternary strategy enables coordinated regulation of temperature and pollutant emissions, offering a technical pathway for hydrogen-rich fuel applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3802-0
Exploring efficient bifunctional electrocatalysts for both hydrogen and oxygen evolution reactions is key to water electrolysis. However, the inherently slow reaction kinetics of electrocatalysis are constrained by mass transfer limitations and unsuitable adsorption/desorption dynamics. Herein, a Fe-doped-Ni3S2/NiFeCoCeIn oxide hydroxide (FNS/HEOXY) crystalline–amorphous heterostructure electrocatalyst with a large work function difference (ΔΦ) and strong built-in electric field (BEF) is successfully designed and synthesized. Benefiting from the electron transfer behavior from FNS to HEOXY, the FNS/HEOXY shows outstanding catalytic activity for both hydrogen and oxygen evolution, along with ultra-high stability in an alkaline medium at an industrial-level current density. Moreover, the anion exchange membrane water electrolyzer (AEMWE) assembled by the FNS/HEOXY requires only a minimal cell voltage of 1.83 V to reach 1 A cm−2 at 80 °C. Both experimental and theoretical results confirm the interfacial charge redistribution induced by the strong BEF, thus finely optimizing the adsorption energy. This work proposes a new design principle toward efficient electrocatalysts for energy conversion.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511051
Photosynthetic bacteria (PSB) wastewater treatment technology is promising for simultaneous pollutant removal and resource recovery (e.g., single-cell protein, hydrogen). However, poor cell hydrophobicity and aggregation lead to low biomass retention and short sludge retention time, hindering engineering application. This study investigated the driving role and mechanism of upflow velocity as a key hydraulic selection pressure on PSB granulation under stepwise increasing organic loading rate (OLR). In laboratory up-flow photobioreactors (UPBR), comparative experiments were conducted with macro-index monitoring and micro-mechanism analysis. Results showed that under high upflow velocities of 3.00–6.30 m·h−1, PSB granular sludge with an average diameter of 285.58 μm and excellent settleability (sludge volume index, SVI = 22.73 mL·g−1) was successfully formed within approximately 60 days. Compared to the control, the granules in the experimental group were larger, with clear boundaries and compact structure, and significant enrichment of filamentous bacteria was observed. Mechanism analysis indicated that OLR provided nutritional driving force for microbial growth, while upflow velocity supplied high hydraulic shear force, physically screening and enriching settleable aggregates, and specifically inducing secretion of hydrophobic tryptophan-like proteins and humic acids (key extracellular polymeric substances, EPS). Additionally, core genera such as Xanthobacteraceae, possessing stress tolerance and EPS secretion functions, were enriched. This study reveals a chain mechanism of 'physical selection–biological response' centered on hydraulic selection, demonstrating that upflow velocity is a key controllable factor for PSB granulation, providing theoretical basis and technical pathway for solving PSB biomass washout and promoting resource-oriented treatment of high-strength organic wastewater.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60636-6
Polyoxymethylene dimethyl ethers (DMMx) are promising clean diesel additives. Compared to the traditional aldol condensation route, the one-step oxidative method for producing DMMx directly from methanol is a green synthesis route offering significant advantages. However, due to the complexity of the reaction, a balance must be struck between oxidation depth and C–O chain growth efficiency. This imposes specific requirements on the design of catalysts with multifunctional active sites: the catalyst should possess appropriate oxidative activity, suitable acid strength distribution, and effective synergy between these two functions. To address these challenges, this study designed a sulfuric acid-modified molybdenum-doped NASICON catalyst, which demonstrated favorable catalytic performance in the one-step oxidative synthesis of DMMx from methanol. Over the NSC-Mo-0.5-30% catalyst, methanol conversion rate of 81.3% and the DMMx selectivity of 58.7% were achieved, along with the formation of heavier molecules, as evidenced by the DMM2–6 selectivity of 11.3%. The NH3-TPD, Py-IR and XPS results indicate that the introduction of molybdenum increases the number of weak Lewis acid sites, while sulfuric acid impregnation not only generates gradient-distributed Brønsted acid sites but also promotes the formation of Mo5+/Mo6+ redox pairs. The cooperation of the two types of active sites significantly enhances catalyst performance.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026011902
The migration of perfluoroalkyl and polyfluoroalkyl substances (PFASs) at the water–soil interface in paddy fields is a critical determinant of their environmental fate and crop safety. This study investigated the influence of low-molecular-weight organic acids (LMWOAs) on PFASs mobility under waterlogged conditions. Four LMWOAs—oxalic, citric, lactic, and acetic acids—were individually enriched in paddy soils, and the migration of 15 PFASs was monitored. Acetic acid enrichment most strongly suppressed PFASs release into overlying water. Mechanistic analyses using X-ray photoelectron spectroscopy, three-dimensional excitation–emission matrix spectroscopy, microbial amplicon sequencing, and metagenomics revealed that acetic acid reshaped the microbial community, enriching sulfate-reducing bacteria and upregulating sulfur reduction genes (SULT1A) and nitrogen transformation genes (nifN, nirI, nthB). This drove sulfate reduction to sulfite and sulfide. ABT modeling identified sulfur metabolism as the dominant factor controlling PFASs immobilization (26.06% contribution). Experiments under varying sulfur redox conditions confirmed that sulfite (SO3^2−) oxidation indirectly altered dissolved organic matter (DOM) composition, weakening PFASs–DOM binding and reducing PFASs in overlying water. These findings demonstrate that LMWOAs accumulation, particularly acetic acid, can effectively impede PFASs migration at the paddy water–soil interface via microbial sulfur cycling and associated DOM structural changes, offering a potential strategy for PFASs remediation in agricultural systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026041402
Per- and polyfluoroalkyl substances (PFAS) are emerging contaminants ubiquitously distributed in paddy soils. In paddy management, surface water irrigation introduces quinolone antibiotics (QNs) into the soil, potentially altering PFAS interfacial migration via microbial community shifts. This study investigated the soil-water partitioning of PFAS under irrigation with four QNs (norfloxacin, ciprofloxacin, enrofloxacin, ofloxacin) using UHPLC-MS/MS and soil metagenomics. Results showed that QNs input, especially norfloxacin, significantly promoted the release of short-chain PFAS (e.g., PFBA) from soil to overlying water, while long-chain PFAS remained largely retained in soil. Metagenomic analysis revealed that archaeal and viral communities contributed most to PFAS release. Spearman correlations indicated ammonia-oxidizing archaea (Nitrososphaera) positively correlated with PFBA, whereas Bcep22virus negatively correlated with multiple PFAS. Differential gene expression and co-occurrence networks suggested QNs suppressed key functional genes in archaea and viruses (nitrogen metabolism, secretion systems, outer membrane proteins), reshaping interfacial partitioning and enhancing short-chain PFAS mobility, thereby increasing food security risks.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4079-4
Utilization of ultrahigh-nickel LiNi_xCo_yMn_1-x-yO_2 (NCM) (x > 0.97) in Li-ion batteries can distinctively boost energy density through enhanced discharge capacity. However, capacity and thermal stability deteriorate as Ni content approaches the limit. Here, we propose a facile strategy by introducing high-valence tungsten (W) into ultrahigh-nickel polycrystalline LiNi_0.98Co_0.01Mn_0.01O_2 (PCNCM98). W-doped PCNCM98 (W-PCNCM98) exhibits refined, compactly stacked primary particles, whereas PCNCM98 shows equiaxial, non-uniform larger particles. The refined microstructure enhances mechanical strength: average particle hardness of W-PCNCM98 is 104 MPa, 1.5 times higher than PCNCM98 (68 MPa). This improved mechanical property suppresses lattice volume changes and relieves microcrack formation from H2–H3 phase transition. Consequently, cycling performance in pouch-type full cells is significantly enhanced, with capacity retention of 73% after 2000 cycles at 1 C and 25 °C, 54% higher than PCNCM98. Enhanced structural stability and strong electron affinity of W6+ also improve thermal stability: exothermic peak for W-PCNCM98 is postponed to 203 °C with heat generation of 1287 J g−1, versus 190 °C and 1528 J g−1 for PCNCM98. This high-valent doping strategy stabilizes ultrahigh-nickel NCM cathodes, accelerating large-scale EV applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4039-1
Immunosuppressive metabolites are major drivers of tumor immune suppression. Among these, kynurenine (Kyn) is produced through the catalysis of tryptophan (Trp) 2,3-dioxygenase (TDO) in hepatocellular carcinoma. However, TDO inhibition alone is often insufficient because residual pathway flux sustains the accumulation of the downstream immunosuppressive metabolite quinolinic acid (QA). Here, we propose a strategy to disrupt residual kynurenine pathway activity to enhance metabolism-driven tumor immunotherapy. We develop acid-responsive metal-organic complex nanoparticles (APAP@TDOi-Zn, ATZn) that integrate the TDO inhibitor (TDOi) and Zn2+, while encapsulating acetaminophen (APAP) to inhibit 3-hydroxyanthranilate 3,4-dioxygenase (HAAO), thereby limiting QA production and simultaneously suppressing the residual immunosuppressive metabolite. QA suppression limits M2 macrophage polarization, whereas Kyn inhibition and Zn2+ supplementation promote T cell proliferation and cytotoxicity. Consequently, ATZn rewires Trp-Kyn metabolism and augments antitumor immunotherapy. This work enhances the efficacy of metabolic checkpoint blockade and provides a strategy to overcome metabolism-driven immune resistance.