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Verified CAS / Academic Author4 Decoded Studies

Prof. Ying Lu

School of Materials Science and Engineering, Sun Yat-sen University

Co-Affiliations:Colorado State UniversityKey Laboratory of Polyoxometalate Science of Ministry of Education, College of Chemistry, Northeast Normal University

Research Publications & English Decoded Briefs

Showing 4 publications
Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025021101

Toxic Effects of Benzo[a]pyrene on Pancreatic Development and Function in Offspring Rats

This study investigated the toxic effects of intrauterine benzo[a]pyrene (BaP) exposure on pancreatic development and glucose metabolism in first-generation offspring rats. Pregnant Wistar rats were randomly divided into control and treatment groups receiving 200, 800, or 1600 μg·kg−1 BaP via daily oral gavage during gestation until delivery. Pancreatic histology was assessed in offspring at postnatal day 2 and week 12. Protein and mRNA expression of pancreatic duodenal homeobox-1 (PDX-1) and mitochondrial transcription factor A (TFAM) were quantified. Intraperitoneal glucose tolerance tests (IPGTT) and insulin tolerance tests (IPITT) were performed at week 12. Results showed that exposure to 800 and 1600 μg·kg−1 BaP caused dose-dependent pancreatic damage, with more severe islet morphological disruption and reduced islet area, which did not improve with age. PDX-1 and TFAM expression levels decreased in a dose-dependent manner at both time points. At week 12, the 1600 μg·kg−1 group exhibited pre-diabetic symptoms, including elevated blood glucose and insulin levels, and impaired glucose tolerance and insulin sensitivity. These findings indicate that intrauterine BaP exposure leads to persistent pancreatic developmental impairment and glucose metabolism disorders, potentially mediated by downregulation of PDX-1 and TFAM, with no recovery over time.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3774-3

Advancing lithium-air capacitor batteries through redox pair-enabled dual-cathode configurations

Lithium-air capacitor batteries (LACBs) integrate the rapid charge-discharge capability of supercapacitors into conventional lithium-oxygen batteries, significantly enhancing power density. However, their cycling stability remains unsatisfactory. In this study, we incorporated redox mediators (RMs) into an LACB featuring a dual-cathode configuration. This design facilitates sustained electron transfer between the electrode and Li2O2/Oxygen, thereby delaying RM deactivation caused by electrode passivation and improving overall electrochemical performance. The RM-enhanced battery achieved over 250 cycles at 2 mA cm−2 with a limited capacity of 0.5 mAh cm−2, while exhibiting a 0.54 V reduction in charging voltage at 0.1 mA cm−2 compared to the RM-free system. Furthermore, application of an aluminum foil sealing technique enabled a power density of 13.8 mW cm−2 at 6 mA cm−2, overcoming mass transport limitations inherent in open-cell configurations. We also investigated the influence of oxygen barrier films with varying barrier capabilities on LACB performance. Results indicate that films with superior oxygen resistance better maintain a clean capacitor electrode surface, thereby providing more stable electron supply to the RMs and enhancing rate capability and cycling performance. These findings underscore the potential of redox mediators in improving the performance and longevity of LACBs, offering a promising strategy for their future development.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3855-8

Coupling of Supramolecular Chemistry with Dynamic Covalent Chemistry for Circular Polymers

The escalating environmental burden of plastic waste necessitates innovative chemical recycling strategies that circumvent the energy-intensive and catalytic limitations of conventional depolymerization. This study highlights a seminal advance by Qi Zhang, Da-Hui Qu, Ben L. Feringa, and co-workers, published in Nature Nanotechnology, which integrates supramolecular self-assembly with dynamic covalent chemistry to achieve catalyst-free, solvent-free polymer-to-monomer transformation. The system employs thioctic amide (TAA), a derivative of α-lipoic acid featuring reversible disulfide bonds and hydrogen-bonding amide groups. Notably, TAA monomers resist ring-opening polymerization upon melting due to cross-stacked packing driven by amide hydrogen bonds, which kinetically separates the 1,2-dithiolane rings. Introduction of formic acid (FA) as a supramolecular modulator disrupts the hydrogen-bond network, enabling dynamic disulfide ROP. Subsequent solvent removal yields nanocrystalline poly(disulfide) (Nc-poly(TAA)), which upon annealing at 120 °C reorganizes into a semicrystalline polymer (Sc-poly(TAA)) with a Young's modulus of 3.9 GPa, comparable to Nylon 6. The semicrystalline polymer exhibits hierarchical order with densely packed spherulites and periodic lamellae stabilized by reticular hydrogen bonds, conferring exceptional mechanical robustness and resistance to humidity (80% RH for six days). Rheological analyses reveal a relaxation time exceeding 90 years at room temperature, indicating a kinetically trapped, metastable state. Remarkably, the polymer reverts quantitatively to monomeric crystals under mild heating (120 °C, 24 h) without catalyst or solvent, achieving >90% purity and quantitative yield. The recovered monomer can be repolymerized to virgin-quality polymer, establishing a closed-loop cycle. Life-cycle assessment shows a carbon footprint of only 0.36 kg CO2 per kg product, underscoring the environmental benefits. This work demonstrates a fundamentally new route to circular polymers, merging supramolecular chemistry with dynamic covalent bonds for sustainable materials.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4223-2

Multifunctional polyoxometalate-based conductive hydrogels for low temperature tolerant, flexible wearable electronics

Flexible wearable electronics require materials that simultaneously exhibit high conductivity, mechanical flexibility, and environmental robustness. Polyoxometalate (POM)-based conductive hydrogels are promising candidates but suffer from poor interfacial compatibility with polymer matrices and severe conductivity loss at subzero temperatures. Here, we report a POM-based proton-conductive hydrogel (PVA/P(SBMA-AM)/PW12/PA, denoted PSAWA) engineered by incorporating zwitterionic sulfobetaine methacrylate (SBMA), phytic acid (PA), and H3PW12O40 (PW12) into a poly(vinyl alcohol)-polyacrylamide dual-network. SBMA enhances PW12 loading and dispersion via an electrostatic–steric synergistic mechanism, while PA cooperates with PW12 to construct low-energy-barrier proton-conduction pathways, enabling fast proton migration even at −40 °C. The resulting PSAWA hydrogel achieves ultrahigh proton conductivities of 2.71 × 10−1 S cm−1 at 25 °C and 1.06 × 10−2 S cm−1 at −40 °C, alongside high stretchability, self-healing capability, antibacterial activity, and biocompatibility. Flexible biosensors and supercapacitors fabricated from PSAWA maintain outstanding performance at −40 °C. This work provides a viable strategy for developing low-temperature-tolerant proton-conductive hydrogels for advanced wearable electronics.