SinoGreenTech Academic Portal
GL
Verified CAS / Academic Author2 Decoded Studies

Prof. GAO Lu

Xi'an Jiaotong University

Co-Affiliations:Beihang University

Research Publications & English Decoded Briefs

Showing 2 publications
Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025010201

Contamination and Risk Assessment of Perfluoroalkyl Substances in Surface Water in the Guanzhong Section of the Wei River Basin

The Guanzhong region, traversed by the Wei River Basin, is one of the most industrially, agriculturally, and medically advanced and densely populated areas in Northwest China, has seen increasing attention paid to the pollution of perfluoroalkyl substances (PFASs) in its surface water environment. This study systematically investigated the pollution characteristics of PFASs in the surface water of this region and their ecological and health risks. By optimizing the online solid-phase extraction-liquid chromatography-tandem quadrupole mass spectrometry (Online SPE-LC/MS/MS), efficient detection of 19 PFASs was achieved, with the method detection limits ranging from 0.2 ng·L−1 to 0.3 ng·L−1, linear correlation coefficients all ≥ 0.990, and spiked recoveries between 75.2% and 130.0%. Monitoring data indicated that PFBA, PFPeA, PFHxA and PFOS, short-chain perfluorinated compounds, were the main pollutants in this region, with high detection frequencies and concentrations, but the overall content was lower than that in most areas of China. The concentrations of PFASs in surface water showed significant seasonal variations, with the highest concentrations during the dry season (∑19PFASs:126.1 — 2584.3 ng·L−1), followed by the normal season (∑19PFASs:3.5—3567.6 ng·L−1), and the lowest during the wet season (∑19PFASs:26.3—294.6 ng·L−1). Ecological risk assessment showed that, except for PFDoDA in the dry season, the ecological risk quotient (RQ) of all other PFASs was < 1. Although the water of the Wei River is not used as direct drinking water, health risk assessment indicated that all PFASs posed low risks, with only PFOA and PFOS showing potential risks (HR > 0.1) to adults and children at some sites during dry/normal seasons. This study provides a scientific basis for PFASs pollution control in the Wei River Basin.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3330-2

Multifunctional Janus Fabrics for Top Sheet of Cloth Diapers

Traditional cloth diapers rely on the water retention capacity of absorbent cores to deter leaks, often overlooking the top sheet, which can lead to reverse osmosis of absorbed urine. Janus membranes, known for their liquid diode effect, present an ideal material for the top sheet of cloth diapers. However, the widespread application of Janus membranes in cloth diapers faces challenges such as failure to meet anti-backflow requirements, limited biocompatibility, and insufficient antimicrobial properties. Here, a multifunctional Janus fabric for the top sheet of cloth diapers is developed through the synergistic combination of gradient wettability and nanoparticle functionality. The modulable gradient wettability provides unidirectional liquid transport with a high rectification ratio, which is essential for preventing liquid backflow. Consequently, prototype cloth diapers incorporating Janus fabrics as the top sheet outperform commercial products in wetback resistance. Functionalized silver nanoparticles not only provide the necessary micro-nano hierarchical structure for gradient wettability but also endow Janus fabrics with excellent chemical antibacterial properties. The integration of dryness derived from the excellent unidirectional transport performance and antibacterial properties effectively prevents bacterial growth on cloth diapers. Additionally, the Janus fabrics exhibit excellent washability and biocompatibility, further enhancing their potential applications in reusable cloth diapers.