SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3630-2
This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024110202
Anaerobic digestion (AD) is an environmentally friendly biochemical technology for waste treatment and renewable energy production, yet its methane conversion efficiency remains suboptimal. This study employed flux balance analysis (FBA) to determine the optimal temperature for methane production in AD, and subsequently regulated key flexible nodes in the metabolic pathway to maximize methane flux. At the optimal temperature of 40 °C, up-regulating the acetyl-CoA flexible node increased methane flux by 48.5%, while up-regulating the acetate node increased it by 36.6%. The higher improvement via acetyl-CoA regulation is attributed to the fact that 40 °C is unfavorable for hydrogen-producing acetogenic bacteria, making acetyl-CoA the critical control point. These findings demonstrate that flexible node regulation can overcome the limitations of temperature optimization alone. The FBA methodology provides a reliable, cost-effective approach for optimizing target product yields in AD and other fermentation systems, requiring only input and output measurements to resolve intermediate metabolic fluxes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3778-8
The global surge in polyvinyl chloride (PVC) waste demands urgent technological solutions that address both environmental persistence and resource recovery. Here, we present a triple-functionalization strategy that converts chlorinated plastic waste into high-performance sodium-ion battery anodes through molecular-level control of carbon architectures. Sequential dichlorination, sulfonation, and N-doping collaboratively reconfigure precursor reactivity, steering pyrolysis toward hierarchically porous hard carbon with tailored defect chemistry. Sulfonic groups stabilize 3D carbon skeletons during carbonization, enabling closed-pore formation with an average diameter of ~2.55 nm while N-doping expands interlayer spacing (0.382 nm) and creates adsorption-active pyrrolic-N sites. This defect-engineered synergy delivers unprecedented sodium storage metrics: 355 mAh g−1 reversible capacity at 0.1 A g−1 (95.4% of graphite’s Li-ion capacity), a capacity retention of 216 mAh g−1 after 1000 cycles at 1.0 A g−1 (70.1% capacity retention), and 188 mAh g−1 even at a high current density of 5.0 A g−1. Operando analyses reveal a potential-dependent storage hierarchy: surface-dominated adsorption transitions to intercalation/filling-dominated behavior with defect-buffered structural integrity. The process simultaneously achieves 25% carbon yield from PVC and avoids toxic dioxin emissions, establishing a scalable prototype for sustainable energy storage systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024042404
The direct catalytic decomposition of the greenhouse gas N2O into nitrogen and oxygen holds significant environmental importance. In this study, CaO-modified Rh-based catalysts were prepared via a stepwise impregnation method. The catalyst structures were characterized, and their catalytic performances for N2O decomposition were investigated. The characterization results demonstrate that CaO doping significantly enhances catalytic activity and water resistance. Specifically, the 0.5Rh/Al2O3 catalyst exhibited a N2O conversion below 5% at 300 °C, whereas the 0.5Rh-4Ca/Al2O3 catalyst achieved 50% conversion under identical conditions, indicating markedly improved low-temperature activity. Compared to the undoped catalyst (0.5Rh/Al2O3), CaO doping (0.5Rh-xCa/Al2O3) strengthens metal-support interactions, improves Rh dispersion on the support surface, and modulates the electron density around Rh, thereby substantially boosting N2O decomposition capability. The catalyst also demonstrated excellent stability, maintaining essentially constant conversion over 40 h of reaction. These findings underscore the potential of alkaline earth metal oxide doping as an effective strategy for designing high-performance noble metal catalysts for N2O abatement.