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Verified CAS / Academic Author7 Decoded Studies

Prof. JIA Peng

College of Resources and Environmental Sciences, China Agricultural University; National Key Laboratory of Nutrient Use Efficiency, Beijing; Organic Recycling Research Institute (Suzhou), China Agricultural University

Co-Affiliations:State Key Laboratory of Metastable Materials Science and Technology, Yanshan University; Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University

Research Publications & English Decoded Briefs

Showing 7 publications
Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202506041

Synergistic Composting of Urban and Rural Multi-Source Organic Waste and Product Quality Evaluation: A Case Study of a Treatment Center in the Taihu Lake Region

Urban and rural multi-source organic waste faces bottlenecks including high compositional heterogeneity, single resource recovery pathways, and uneven product quality. In the Taihu Lake region, active tourism and catering, high greening, and dense water networks generate large volumes of diverse waste with high moisture content, exacerbating these issues. This study evaluated a coupled bio-drying and aerobic composting process at a demonstration center in Linhu Town, Suzhou, Jiangsu Province, employing a three-stage control strategy: gradient dewatering, high-temperature stabilization, and maturation enhancement. Continuous operation showed that kitchen waste moisture content decreased from 77.70% to 58.69% after 1 day of bio-drying, to 23.22% after 7 days of silo reactor composting, and to 17.70% after at least 20 days of maturation. The aerobic composting phase maintained temperatures above 55°C for over 5 days, reaching a maximum of 68.1°C, meeting the harmless treatment requirements of CJJ 52—2014. After 20 days of maturation, the organic fertilizer product had an electrical conductivity below 4.00 mS·cm−1, organic matter content of 51.22%, total nutrient content of 5.61%, and heavy metal concentrations below the limits of NY/T 525—2021. The results provide technical support for efficient treatment and resource utilization of urban and rural organic waste.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202507030

Spectrophotometric Method for Rapid Determination of As(V) and As(III) in Industrial Wastewater

Arsenic is a toxic metalloid predominantly present in water as As(V) and As(III), whose speciation governs toxicity and mobility. Conventional speciation methods (HPLC-ICP-MS, IC-HG-AFS) offer ultralow detection limits but suffer from high cost, long analysis times, and non-portability, hindering on-site rapid monitoring. This study presents a sulfide-based spectrophotometric method exploiting the quantitative reaction between As(V) and S2− to form monothioarsenate (H3AsO3S) with a characteristic absorption at 233 nm. Under optimized conditions (H+ concentration 1 mol·L−1, Na2S dosage 5 mmol·L−1, reaction time 3 min, N2 purging 2 min), As(V) is directly quantified. Total arsenic is determined after complete oxidation of As(III) to As(V) using NaClO (10 mmol·L−1, pH 12, 5 min), and As(III) is obtained by difference. The method exhibits linearity over 0.5–50 mg·L−1 (A = 0.0209c + 0.0627, R² = 0.999), a detection limit of 0.17 mg·L−1, spike recoveries of 101.9%–104.1%, and relative standard deviation of 1.06%. Validation against real industrial wastewater samples showed relative deviations <10% compared with HPLC-ICP-MS and IC-HG-AFS. Total analysis time is within 15 min. The method is simple, cost-effective, and suitable for field monitoring.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3819-7

Spatially Decoupled Redox Pathways in 2D/2D g-C3N4/ZnIn2S4 Enable Highly Selective Aerobic Photooxidation of Biomass

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 Materials2026DOI: 10.1007/s40843-025-3837-1

Emerging g-C3N4-Based Piezo-Photocatalysis: Synergistic Mechanisms, Modification Strategies, and Applications

The escalating energy crisis and environmental pollution necessitate sustainable catalytic technologies. Piezo-photocatalysis, coupling light and mechanical energy via the piezoelectric effect, has emerged as a promising platform for energy conversion and environmental remediation. This review systematically summarizes recent progress in g-C3N4-based piezo-photocatalysis, addressing the intrinsic limitations of pristine g-C3N4, including weak piezoelectric response, poor low-frequency mechanical response, rapid carrier recombination, and insufficient mechanical stability. Modification strategies such as heterojunction construction, morphology engineering, and element doping are detailed, emphasizing their roles in amplifying internal electric fields and promoting charge separation. The review highlights applications in H2 evolution, H2O2 generation, pollutant degradation, and CO2 photoreduction. Despite achievements, challenges remain in mechanistic understanding and performance optimization. This review provides guidance for rational design of g-C3N4-based piezo-photocatalytic systems, accelerating their deployment in sustainable technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3942-2

Work-function-engineered high-entropy alloy/carbon nanofibers direct Na+ transport for stable anode-free sodium batteries

Anode-free sodium metal batteries (AF-SMBs) are promising for high-energy, low-cost energy storage, but suffer from interfacial instability due to sluggish Na+ kinetics and non-uniform deposition. Here, we report a scalable electrospinning-pyrolysis route to anchor FeCoNiCuMn high-entropy alloy (HEA) nanoparticles on N-doped carbon nanofibers (HEANCF). Density functional theory (DFT) calculations reveal high binding energy toward Na atoms, facilitating desolvation and adsorption. A built-in electric field (BIEF) arises from work function differences, driving electron redistribution and guiding uniform Na+ diffusion. The heterostructure also shows strong affinity for PF6− anions, promoting NaF-rich SEI formation that suppresses electron tunneling and parasitic reactions. Full cells with Na3V2(PO4)3 cathodes achieve 80% capacity retention after 600 cycles at 1 C. Ah-level pouch cells deliver ~200 Wh kg−1 and retain 87% capacity after 150 cycles at 0.5 C. This work establishes a coherent interfacial-kinetics framework for practical AF-SMBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4055-6

Emerging Trends of g-C3N4-Based Photocatalysts from 2020 to 2025

The global pursuit of clean energy and environmental remediation has intensified research into solar-driven photocatalysis, with g-C3N4 emerging as a leading metal-free polymer semiconductor. Between 2020 and 2025, significant advances have been achieved in overcoming the inherent limitations of pristine g-C3N4, such as restricted light absorption (wavelengths <460 nm), rapid charge recombination, and insufficient active sites, through sophisticated modification strategies. This period has witnessed the refined development of elemental doping, defect engineering, heterostructure construction, and cocatalyst loading, each playing a critical role in enhancing optical properties, charge separation efficiency, and surface reactivity. Contemporary research increasingly focuses on band structure precision engineering, interfacial charge transfer pathways, and defect-mediated catalytic mechanisms. These developments are underpinned by advanced characterization techniques, including X-ray absorption spectroscopy, in-situ Fourier transform infrared spectroscopy, femtosecond transient absorption spectroscopy, Kelvin probe force microscopy, in-situ X-ray photoelectron spectroscopy, and electron paramagnetic resonance. Looking forward, emerging trends such as AI-guided material design, atomic-scale defect control, and operando analysis are shaping the next generation of high-efficiency g-C3N4 photocatalysts, offering a promising outlook for their application in sustainable energy conversion and environmental remediation.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3505-0

Large Crystallographic Orientation Difference Contacts Induce Phase Transformation of WS2 Nanosheets from 2H to 1T

The synthesis of phase-pure 1T-WS2 remains a persistent challenge due to the thermodynamic metastability of the octahedral phase and the absence of a mechanistic understanding of the 2H-to-1T transformation at the atomic scale. This study demonstrates that when two 2H-WS2 grains with crystallographic orientation differences exceeding 10° are brought into contact at 1000 °C, they coalesce and transform into a single, pure 1T-WS2 grain devoid of orientation mismatch. First-principles calculations reveal a thermodynamic crossover at 280 K: below this temperature, 2H-WS2 is the stable phase, whereas above 280 K, 1T-WS2 becomes energetically favored. Kinetic analysis of nucleation shows that homogeneous nucleation of the 1T phase requires overcoming an energy barrier of 2.314 eV, while heterogeneous nucleation at the contact interface of two nanosheets necessitates only 0.005 eV, a reduction of nearly three orders of magnitude. This dramatic barrier lowering is attributed to the synergistic effect of elevated temperature and lattice mismatch-induced interfacial restructuring, which promotes atomic rearrangement and the formation of 1T-WS2 at the contact boundary. The 1T phase region subsequently expands, consuming the surrounding 2H nanosheets and yielding large-area, phase-pure 1T-WS2 films. This work establishes a straightforward, clean synthesis route for 1T-TMDs and provides a mechanistic framework for interface-driven phase engineering in two-dimensional materials.