Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025010603
The global production, inventory, and retirement of lithium-ion batteries are increasing, while new technologies and materials for safety introduce various binders, lithium salts, flame retardants, and solvents, some of which may be emerging pollutants (EPs). This study identifies 43 EPs across 6 categories in the entire life cycle of lithium-ion battery production. Electrolytes contain the most EPs, including per- and polyfluoroalkyl substances (PFASs) lithium salts and solvents, as well as organophosphorus flame retardants. Production emissions of 1,3-butadiene (1,3-BD), dichloromethane (DCM), and N-methylpyrrolidone (NMP), and release of ultra-short-chain PFASs such as bis(trifluoromethylsulfonyl)imide (NTf2) and trifluoromethanesulfonamide (TfNH2) from discarded batteries require attention. Health risk assessments at production and disposal sites show that DCM poses the highest carcinogenic risk at production sites, exceeding the EPA's basic carcinogenic risk value of 1×10−6 but below the critical value of 1×10−4, with non-carcinogenic risk below the EPA threshold of 1. At disposal sites, tris(1,3-dichloro-2-propyl)phosphate (TDCPP) poses the highest carcinogenic risk, below 1×10−6, while tri(2-chloropropyl)phosphate (TCPP) exhibits the highest non-carcinogenic risk, below 1. Comparison of domestic and international regulations highlights gaps in domestic regulations. Recommendations include tiered management of similar-function chemicals, research on alternatives for high-risk chemicals, implementation of clean production mechanisms, establishment of green product standards, and development of guidelines for managing EPs. This study comprehensively summarizes EPs in the lithium-ion battery life cycle, providing technical support for their management.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4105-8
Chiral europium(III) (Eu(III)) complexes, characterized by their f-f transitions and allowed magnetic dipole transitions, exhibit narrowband emission and superior circularly polarized luminescence (CPL) with high luminescence dissymmetry factors (g_lum), making them promising for circularly polarized organic light-emitting diodes (CP-OLEDs) and 3D displays. Here, we report a pair of R/S-Eu(TTA)3DFPO enantiomers, employing β-diketone 1,1,1-trifluoro-3-(2-thenoyl)acetone (TTA) as the main ligand and point-chiral R/S-tert-butyl(6-(diphenylphosphoryl)dibenzo[b,d]furan-4-yl)(phenyl)phosphine-oxide (R/S-DFPO) as ancillary ligands. In toluene, these enantiomers display characteristic narrowband red emission from the 5D0→7F2 transition of Eu(III), with a maximum emission wavelength of 617 nm, a full width at half maximum of 11 nm, a photoluminescence quantum yield of 43%, and pronounced chiroptical response, evidenced by |g_PL| values of 8.0 × 10^-3 around 590 nm (5D0→7F1 transition). Notably, CP-OLEDs fabricated via vacuum deposition achieve a maximum external quantum efficiency of 4.0% and exhibit obvious circularly polarized electroluminescence with |g_EL| values exceeding 1.0 × 10^-2. These results demonstrate that point-chiral phosphine-oxide ligands provide an effective strategy for achieving coordination-stable chiral Eu(III) complexes for high-performance CP-OLEDs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3819-7
Selective solar-driven aerobic oxidation of biomass derivatives into valuable chemicals under ambient conditions is pivotal for sustainable chemical manufacturing but faces challenges from the conflict between O2 activation kinetics and selective C–H bond cleavage. This work demonstrates a spatial decoupling strategy in a precisely-engineered 2D/2D g-C3N4/ZnIn2S4 architecture, where ZnIn2S4 domains selectively activate O2, while adjacent g-C3N4 modulates electron transfer to O2 and tailors 5-hydroxymethylfurfural (HMF) binding configuration for selective C–H bond cleavage. This enables efficient selective conversion of HMF to 2,5-diformylfuran (DFF) via ambient aerobic photooxidation. When used alone, ZnIn2S4 produces mixed reactive oxygen species (·O2−/·OH) due to uncontrolled electron transfer during O2 activation. In-situ spectroscopy, Kelvin probe force microscopy (KPFM) and density functional theory (DFT) calculations demonstrate that the 2D/2D heterojunction, driven by its directed electric field, selectively activates O2 into ·O2− at ZnIn2S4 domains while suppressing ·OH generation by moderate electron transfer, mitigating over-oxidation. Adjacent g-C3N4 domains precisely anchor HMF via –OH group interactions, steering selective DFF formation. This spatial decoupling achieves a remarkable HMF-to-DFF photo-conversion rate of 1517.5 μmol g−1 h−1 with 99.4% selectivity under ambient air, outperforming many reported state-of-the-art catalysts and maintaining durable cycling performance. The work establishes a spatial decoupling principle to overcome O2 activation kinetics and site competition thermodynamics, paving the way for advanced catalyst design for sustainable energy and the environment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3951-4
Silicon anodes offer an ultrahigh theoretical capacity (4200 mAh g−1) but suffer from >300% volumetric expansion during cycling and unstable solid electrolyte interphase (SEI) formation, leading to rapid capacity fading. Here, we design a hierarchical composite p-cSi@aSi@MgSiN2@C featuring a porous crystalline-amorphous silicon core (p-cSi@aSi), an in-situ MgSiN2 transition layer, and an outer nitrogen-doped carbon shell. The 3D interconnected pores accommodate volume expansion, while amorphous silicon enables isotropic lithiation-induced strain, eliminating crystalline phase transition barriers. The MgSiN2 layer transforms into a tough Li3N-rich SEI with ultra-fast ion channels, and the carbon shell provides mechanical confinement and electronic conductivity. This synergistic interface engineering achieves an initial coulombic efficiency (ICE) of 81.4%, a charge transfer resistance of 16.4 Ω after 200 cycles (64% reduction), and a Li+ diffusion coefficient of 1.72×10−11 cm2 s−1. The anode delivers 1719.3 mAh g−1 at 0.2 C after 200 cycles and 823.8 mAh g−1 at 0.5 C after 500 cycles. The molten salt electrolysis synthesis achieves a current efficiency of 68.12% and specific energy consumption of 12.76 kWh kg−1, with an estimated electricity cost of 1154.69 USD ton−1, only 20% of commercial Si/C anodes. This work resolves the ICE-cycle life trade-off and provides a scalable, cost-effective approach for next-generation high-energy batteries.