SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4385-1
Self-assembled monolayers (SAMs) are effective hole-selective contacts for inverted perovskite solar cells, but scalable deposition on rough substrates is hindered by molecular aggregation, disordered packing, and incomplete adsorption. We propose a hybrid strategy incorporating 4-(Piperidin-4-yl)butanoic acid hydrochloride (PBACl) into the 4PABCz solution during dip-coating. PBACl suppresses aggregation via hydrogen bonding and ionic interactions, yielding homogeneous coverage and improved wettability. The piperidine and carboxyl groups passivate buried interfacial defects through hydrogen bonding and coordination with perovskites. Small-area cells achieve a champion power conversion efficiency (PCE) of 26.09%, while a 5 cm × 5 cm mini-module (aperture area 14.4 cm²) delivers 23.29% PCE. Encapsulated devices retain 80% of initial PCE after 1350 h maximum power point tracking under continuous illumination. This ion modulation strategy bridges molecular-level interface control with scalable processing, offering a pathway to industrially relevant perovskite photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3648-2
Transient energy storage devices represent an emerging class of biodegradable power systems that provide temporary energy for implantable medical electronics before safely degrading in vivo. From early transient primary batteries to contemporary rechargeable batteries integrated with wireless charging systems, these devices have evolved to enable stable prolonged power supply. Through rational transient design and structural engineering, they achieve desirable electrochemical performance, tunable degradation rates, and mechanical compatibility with soft, irregular, and dynamic biological tissues. This work provides a critical review of state-of-the-art transient energy storage devices, including transient primary batteries, transient secondary batteries, and transient supercapacitors, with emphasis on their electrodes, electrolytes, encapsulation materials, fabrication processes, and applications. We critically analyze material selection strategies, transient design principles, and architecture design for various transient batteries and capacitors. Finally, we discuss existing challenges and outline future directions to guide the clinical translation of biodegradable power solutions for biomedical implants.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225200
Phosphogypsum, a by-product of wet-process phosphoric acid production, poses severe environmental and safety challenges due to its massive annual output and stockpiling. This study addresses the urgent need for resource utilization by employing phosphogypsum as the primary raw material, supplemented with ground granulated blast furnace slag, fly ash, and type II anhydrite. Two foaming agents, sodium bicarbonate (NaHCO3) and aluminum powder, were used to regulate pore structure, and their effects on ceramsite performance were compared. Under identical preparation conditions, aluminum powder yielded higher 7-day cylinder compressive strength than NaHCO3. Optimal formulations achieved a maximum cylinder compressive strength of 6.5 MPa with a bulk density of 1020 kg/m3, meeting lightweight aggregate concrete strength requirements. Aluminum powder produced closed pores, reducing bulk density to as low as 765 kg/m3, while NaHCO3 generated interconnected pores leading to higher water absorption. XRD, SEM, and BET analyses revealed that strength-contributing phases are calcium silicate hydrate and calcium aluminate hydrate; trace heavy metals (Mo, Ti) hinder their formation, causing structural defects. This work demonstrates a green, non-fired route for phosphogypsum valorization, offering environmental and economic benefits and a pathway for large-scale utilization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4043-3
In-plane InAs nanowires and nanowire networks are promising platforms for electronics, optoelectronics, and topological quantum computing due to their small electron effective mass, narrow bandgap, high electron mobility, strong spin-orbit coupling, and large Landé g factor. However, their selective area growth on CMOS-compatible group-IV substrates remains challenging. Here, we report the selective area growth of high-quality in-plane InAs nanowires and nanowire networks on Ge(111) substrates by molecular-beam epitaxy. Conventional selective-area epitaxy fails to simultaneously achieve good selectivity and continuity. To overcome this, we developed a metal-sown, single-indium-source two-step growth method, which attains both selectivity and continuity but yields nanowires with rough surfaces and lengths below 10 μm. We then introduced an upgraded metal-sown, dual-indium-source two-step growth method, successfully fabricating in-plane InAs nanowires and nanowire networks with smooth surface morphology and lengths exceeding 60 μm. By optimizing the As beam equivalent pressure, overgrowth at network junctions is effectively suppressed, resulting in uniform nanowire networks. High-resolution transmission electron microscopy and Raman spectroscopy confirm the high-quality single-crystalline nature and pure zinc-blende structure of the nanowires and networks. This work establishes a foundation for fabricating high-quality in-plane InAs/superconductor hybrid nanowires and nanowire networks on Ge substrates.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60638-X
The extensive emission of greenhouse gases, primarily CO2 and CH4, has contributed to intensified global warming. Dry reforming of methane (DRM, CH4 + CO2 → 2CO + 2H2) offers a pathway for the synergistic utilization of these two major greenhouse gases, presenting important implications for both environmental protection and energy sustainability. However, the catalysts still face challenges such as carbon deposition and sintering of active metals, which adversely affect the catalytic performance and long-term stability. Oxygen vacancies, which are common lattice defects in metal oxides, have been demonstrated to improve the DRM performance by modulating the surface and interfacial properties of the catalysts. This review systematically summarizes research progresses in DRM over the past decade, outlines the major challenges and emphasizes the critical roles of oxygen vacancies in suppressing carbon deposition and inhibiting metal sintering. Furthermore, the mechanisms through which oxygen vacancies influence DRM reactions are discussed, combined with their formation pathways and regulation strategies. These insights provide essential theoretical foundations for the design and synthesis of highly efficient and stable DRM catalysts.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607024
This study systematically investigated the effects of single and composite conditioning with lysozyme, amylase, and protease on sludge dewatering performance and carbon source recovery in filtrate from residual sludge of a water treatment plant in Foshan City. Results indicated that lysozyme significantly improved sludge dewatering by reducing specific resistance of filtration (SRF), capillary suction time (CST), and water content of the filtered sludge cake (Wc). While amylase and protease decreased Wc, they elevated SRF and CST, deteriorating sludge filtration properties. Among combined enzyme treatments, lysozyme and protease exhibited synergistic effects. The asynchronous addition strategy (protease/amylase followed by lysozyme) demonstrated the best performance in reducing Wc, while simultaneous addition was more effective in improving SRF and CST. Mechanistic analysis revealed that all three enzymes reduced sludge particle size. Lysozyme primarily targeted cell lysis and wall disruption, releasing intracellular substances, reducing viscosity, and enhancing sludge hydrophobicity. Meanwhile, amylase and protease mainly disrupted extracellular polymeric substances (EPS), leading to release of proteins and polysaccharides into slime EPS, increasing viscosity and hydrophilicity. Furthermore, all three enzymes effectively promoted carbon source release, increased soluble chemical oxygen demand (SCOD) of filtrate, and transformed recalcitrant humic acid-like organic matters into readily bioavailable tryptophan-like and tyrosine-like substances. These findings provide a basis for optimizing enzyme-based sludge conditioning to achieve simultaneous dewatering enhancement and carbon source recovery.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4116-0
The design of solid electrolyte interphases (SEIs) for poly(vinylidene fluoride)-based solid-state batteries has largely focused on solvent-affinity of Li+ to generate robust but ionically sluggish LiF-rich layers, inherently compromising transport kinetics. Here, we establish a paradigm based on quantifiable physicochemical descriptors (ionic potential and donor number) to guide the design of amphitropic ion pairs (AIPs). These AIPs are engineered to simultaneously tailor both the solvent-affinity and anion-affinity of Li+: a solvent-philic cation with high ionic potential (Al3+) first sequesters reactive solvents, clearing the path for a high-donor-number, lithium-philic anion (NO3−) to remodel solvation. This rationally guided, sequential mechanism enables the in situ synthesis of a LiF/Li3N heterostructured SEI, where dendrite-suppressing LiF domains are seamlessly integrated with ultra-fast Li3N ion channels. This design heterogeneity effectively enhances stability and kinetics, yielding a robust and highly conductive interface. Consequently, Li|Li cells achieve >2000 h of stable cycling, and Li|LiNi0.8Co0.1Mn0.1O2 full cells surpass 600 cycles.