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Verified CAS / Academic Author13 Decoded Studies

Prof. Hao Lu

Guangdong University of Technology

Co-Affiliations:University of Science and Technology Beijing (inferred from typical affiliations of the authors)Beijing Normal University

Research Publications & English Decoded Briefs

Showing 13 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4452-8

Efficient Ultranarrow-Band Red Eu³⁺ OLEDs Enabled by Modulated Energy Transfer and Charge Transport

Europium(III) complexes offer intrinsically narrow red emission (full-width at half-maximum < 5 nm) that is highly desirable for ultrahigh-definition displays, yet their electroluminescence performance is severely limited by unbalanced charge transport and inefficient energy transfer. This work reports a molecular design strategy that modulates both energy transfer and charge transport in Eu³⁺ OLEDs. The synthesized complex, Cz-Eu, incorporates a carbazole-functionalized ancillary ligand to facilitate host–guest energy transfer and hole transport. The single-crystal structure was deposited (CIF: Cz-Eu-cif.cif) and subjected to PLATON validation, which flagged 3 type-1 alerts (CIF construction/syntax errors), 8 type-2 alerts (possible structural model deficiencies), 12 type-3 alerts (low structure quality), and 4 type-4 alerts (improvement suggestions), with no duplication detected. These crystallographic alerts indicate that the reported structure requires further refinement before it can be considered reliable. Nevertheless, the device metrics demonstrate a promising route: the optimized OLED achieves efficient ultranarrow-band red emission, with the potential for high color purity and reduced power consumption. The findings underscore the critical role of ligand engineering in balancing charge fluxes and fostering efficient energy transfer, providing a viable pathway for next-generation red emitters. However, the structural ambiguities highlighted by the PLATON analysis warrant cautious interpretation of the structure–property relationships and suggest that additional crystallographic and device stability studies are necessary to substantiate the claimed performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4473-9

Selective Ion Separation in Nanoporous Materials: Confinement Sieving, Chemical Recognition, and Dynamic Gating

Selective ion separation is critical for resource recovery, water treatment, lithium extraction from salt lakes, and nuclear waste management, yet the differences in size, solvation structure, and coordination behavior among ions are often minimal, and separation is further complicated by valence, interfacial charge, and competing ions. Nanoporous materials with tunable sub-nanometer channels and chemically active interfaces can regulate ion entry, solvation reorganization, interfacial partitioning, intrapore migration, and release. This review examines three mechanistic categories—size and solvation sieving, chemical recognition, and dynamic gating—from the perspective of confined transport and ion–pore interactions, and compares their roles and coupling in systems of monovalent–monovalent, divalent–divalent, heterovalent, and chemically similar multivalent ions. We further distinguish selective adsorption, membrane enrichment, and transmembrane transport, and discuss how selectivity definitions, ion flux, feed composition, driving force, and operating time affect performance evaluation. Current research faces three major challenges: lack of comparability of performance data across different test conditions, insufficient direct evidence of ion solvation, site occupancy, and migration under operating conditions, and the complexity of feed streams. By adopting a sequential ion transport process as a unified conceptual framework, this review systematically compares separation mechanisms across diverse nanoporous materials, including MOFs, COFs, zeolites, 2D materials, microporous polymer membranes, ion-exchange membranes, biomimetic nanochannels, organic–inorganic composites, functionalized porous carbons, and biochars. This transport-process-oriented framework provides a general and mechanistic perspective for understanding and comparing selective ion separation across diverse nanoporous platforms.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4234-3

Chemical confinement of short-chain sulfur into hierarchical porous hard carbon for ultra-stable high-capacity sodium-ion storage

The pursuit of high-energy-density sodium-ion batteries (SIBs) necessitates the development of stable high-capacity anodes. While amorphous carbon is a promising anode candidate for SIBs, its practical application is hindered by limited capacity. Herein, we design a composite anode by chemically confining a high-content (~25 wt%) short-chain sulfur into hierarchical porous hard carbon microspheres (SHHC) derived from microbe yeast. The SHHC anode exhibits a high reversible capacity of ~807 mAh g−1 at 0.03 A g−1 (~3 times that of conventional amorphous carbon) along with superior rate capability, and extraordinary long-term cyclability (almost 100% capacity retention after 2000 cycles at 1.0 A g−1). The high-content sulfur species contribute to superb redox reactivity for high-capacity sodium storage via a surface-dominated storage mechanism. The carbon matrix features an enlarged interlayer distance, which facilitates Na-ion intercalation and deintercalation for high-rate capability. Furthermore, the hierarchical porous structure with built-in cavities facilitates the Na-ion transfer and effectively accommodates the electrode’s volume expansion, achieving fast electrode kinetics and outstanding cyclability. Such a combination of favored properties leads to state-of-the-art comprehensive battery performance for Na-ion storage. Our finding envisions a new perspective on building stable high-capacity anode materials for SIBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3848-7

Exciton Tuning and Charge Steering in Donor-Acceptor Covalent Triazine Frameworks toward Boosted Photocatalytic Oxidation

Conventional heterogeneous photocatalysts often suffer from insufficient light absorption, rapid charge recombination, and a lack of specific reactive sites for efficient photocatalytic oxidation. To overcome these limitations, we propose a molecular polarization engineering approach utilizing structurally well-defined donor (D)-acceptor (A) covalent triazine frameworks (CTFs). The construction of dipole-induced built-in electric fields within the D-A-structured CTFs enables enhanced exciton dissociation and facilitates directional charge transfer. Specifically, the asymmetric A1-D-A2 moiety enhances molecular polarization in the dual-acceptor system CTF-TBT (A1-D-A2), enabling efficient charge separation through multiple electron-withdrawing units. This structural design promotes directional electron transfer toward the secondary acceptor (benzothiazole, A2), while simultaneously concentrating holes on the donor unit. Consequently, the A2 moiety acts as a site for efficient O2 activation via electron accumulation, whereas the highly oxidized donor unit provides strongly positive holes (h+) that facilitate substrate oxidation. Experimental and DFT calculation results confirm that CTF-TBT demonstrates highly enhanced photocatalytic oxidation performance, which can be attributed to its multi-channel charge separation mechanism and spatially separated redox-active sites. This study highlights the effectiveness of molecular dipole engineering in designing heterogeneous photocatalysts with controlled charge transfer pathways and improved redox capabilities. The proposed design principles provide a universal approach for promoting solar-driven chemical synthesis applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3793-9

High-efficiency hybrid planar/bulk heterojunction organic solar cells

Organic solar cells (OSCs) require both a high donor/acceptor (D/A) interfacial area for efficient exciton dissociation and a vertically phase-separated morphology for efficient charge transport. Traditional bulk heterojunctions (BHJs) provide large interfacial areas but lack vertical phase separation, while quasi-planar heterojunctions (QPHJs) achieve vertical separation at the cost of reduced interfacial contact. Here, we introduce an in situ pore-forming strategy for polymer thin films. By incorporating an excess of additives as pore-forming agents into the donor layer, a nanoporous film with a fibrous nano-network is generated. Subsequent deposition of acceptor molecules fills these nanopores, creating a hybrid planar/bulk heterojunction (HP/BHJ) that synergizes the strengths of both architectures. This design enhances performance by: (1) increasing the D/A interfacial area via nanopores, forming a three-dimensional network that accelerates exciton dissociation; (2) promoting close molecular packing that minimizes carrier recombination and establishes low-defect charge transport channels; and (3) fostering vertical phase separation through layer-by-layer deposition. Binary OSCs fabricated with this strategy achieve a power conversion efficiency (PCE) of 20.0%, surpassing conventional BHJ and QPHJ devices by a significant margin. The approach demonstrates general applicability, with analogous improvements observed in D18/BTP-eC9-4F and PM6/L8-BO systems, underscoring its potential for advancing OSC performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3788-9

Stable δ-FA(Cs)PbI3 Intermediate Enables Fabrication of Large-Area Perovskite Solar Modules in Ambient Air

Fabrication of large-area perovskite solar modules under ambient air conditions remains a critical challenge due to air sensitivity of perovskite intermediate phases during crystallization. Here, we introduce 2-iodoimidazole (IIZ) into the perovskite precursor, enabling the formation of an air-stable pure δ-phase intermediate, which, upon annealing, fully transforms into a highly oriented α-phase perovskite film with reduced defects and variability. Leveraging this approach, we achieve a stabilized power conversion efficiency of 20.9% for 927.5 cm2 perovskite solar modules with high reproducibility. The encapsulated modules meet stringent international photovoltaic testing standards (IEC61215:2021), demonstrating excellent stability under continuous operation, thermal cycling (−40 to 85 °C) and damp heat (85 °C and 85% relative humidity).

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3730-3

Green Separation Membranes for Water Sustainability: A Breakthrough in Biodegradable Nanofiltration Technology

Water scarcity, exacerbated by organic micropollutant contamination and climate change, necessitates energy-efficient, eco-friendly purification technologies. Membrane separation has emerged as a transformative solution, outperforming energy-intensive processes such as distillation. Traditional chemical separations, dominated by distillation, consume 10%–15% of global energy, whereas advanced membrane technologies can reduce energy use by up to 90%. However, membrane separation is hampered by reliance on toxic petrochemical feedstocks and persistent microplastic pollution from nonbiodegradable end-of-life membranes. Shao's group addresses both gaps with a sustainable nanofiltration membrane (SNFM) crafted entirely from low-hazard, renewable components. The substrate polylactic acid (PLA), a biodegradable polyester derived from corn starch, is processed via modified nonsolvent-induced phase separation (NIPS) to form a porous yet strong support. For the selective layer, toxic aromatic monomers are replaced with xylitol (a plant sugar alcohol) and dopamine (DA, a biogenic amine), and green solvents such as dimethyl sulfoxide are used to avoid volatile organic compound emissions. Compared with commercial alternatives, this design yields a membrane with exceptional dual functionality: it maintains high separation performance (928% greater permeance, 92% bisphenol A rejection, and 89% Na2SO4 rejection) and low fouling (protein adsorption ≤12 μg cm−2) over 30 days. A life cycle assessment reveals a 62% reduction in carbon footprint compared with petrochemical-based membranes, whereas soil biodegradation tests confirm 90% breakdown within 6 months, driven by Delftia and Tissierella microbes. By eliminating microplastic waste and toxic inputs, this SNFM bridges the divide between performance and environmental responsibility, offering a scalable blueprint for next-generation green membranes in water treatment and beyond.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3891-5

A precipitation-hardened medium-entropy alloy with low thermal expansion and high ductility

Alloys with low thermal expansion are vital for precision components in aerospace, cryogenics, optics, and electronics, where dimensional stability under thermal cycling is essential. As these applications face harsher mechanical and thermal conditions, materials must offer not only low thermal expansion but also high strength and ductility. Achieving all three remains difficult, as their underlying microstructural requirements often conflict. Here, we present a medium-entropy alloy, Fe54Ni34Co6Ti3Al3 (at.%), designed to overcome this challenge through tailored precipitation engineering. The alloy forms coherent L12 nanoprecipitates that not only provide substantial precipitation strengthening but also modulate the composition of the face-centered cubic matrix. This tuning induces a low coefficient of thermal expansion and metastability in the matrix, enabling transformation-induced plasticity that enhances ductility and strain hardening. As a result, the alloy achieves a tensile yield strength of (1036±21) MPa, uniform elongation of 18.4%±1.1%, and a coefficient of thermal expansion of 5.8×10−6 °C−1. This work demonstrates a precipitation-driven pathway to reconcile strength, ductility, and thermal stability, offering a new strategy for designing multifunctional structural materials for advanced engineering environments.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202510004

Quantitative Evaluation and Coupling Analysis of Purging Performance in Regenerative Thermal Oxidizers Based on CFD Simulation

Ammonium salt crystallization-induced blockage of the regenerative heat exchanger in regenerative thermal oxidizers (RTOs) remains a critical operational challenge, particularly in pharmaceutical applications where NH4Cl constitutes up to 70% of the fouling deposits. This study employs computational fluid dynamics (CFD) to systematically simulate six purging configurations, varying injection angle and pipe arrangement, and quantifies purging effectiveness via a novel evaluation method based on characteristic observation planes. Using the Realizable k-ε turbulence model coupled with a porous media model, we analyze the velocity distribution and low-velocity failure zones at the gas chamber–regenerator interface. Results demonstrate that a single-pipe 45° oblique injection achieves the highest effective purging area of 57.6%, a 35.7% improvement over conventional horizontal purging. Increasing pipe diameter significantly enhances flow uniformity, yielding an efficiency gain of approximately 40%, outperforming mere increases in gas velocity. A synergistic optimization strategy is proposed, prioritizing high-performance purging structures with coordinated parameter tuning. The recommended configuration—single-pipe 45° injection, 280 mm pipe diameter, and 14 m·s−1 gas velocity—achieves 88.2% purging efficiency without additional fan power, representing a 45.6% improvement over conventional modes. These findings provide a theoretical basis and engineering solution for RTO purging system design and operational optimization.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202606021

Construction and Application Analysis of Overall Energy System for Regenerative Thermal Oxidizers (RTOs)

To provide a theoretical basis for energy-saving combustion of regenerative thermal oxidizers (RTOs), this study analyzes energy nodes during RTO operation, refines heat balance accounting, and establishes an overall energy system. Taking a three-chamber RTO as the research object, the enthalpy of exhaust gas at different stages is calculated, and a whole-process heat balance model is developed to systematically analyze exhaust gas preheating, combustion, heat recovery, and heat loss transfer. An improved energy accounting method is proposed to address dynamic heat exchange inside heat accumulators, coupling of multiple gas streams, and boundary heat loss under complex conditions. The longitudinal temperature distribution function of heat accumulators is introduced to overcome difficulties in heat accounting within the accumulator chamber. A thermodynamic system covering 11 key internal energy nodes is constructed. Combined with design characteristics of RTO operation across industries, the application scope of the overall energy system is analyzed; equilibrium terms can be adjusted according to actual conditions, ensuring wide applicability. Validation via an RTO energy system for a glove manufacturing plant demonstrates that outlet temperature prediction accuracy improves from 14.3% to 2.8%, providing a theoretical foundation for future intelligent energy-saving combustion research.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202607013

Synergistic Effects of Earthworm Mucus and Different Biochars on Heavy Metal Bioavailability in Sludge Composting

This study investigated the synergistic effects of earthworm mucus and two biochar types (rice husk biochar and straw biochar) on heavy metal bioavailability during sludge composting. Sludge was amended with earthworm mucus alone or combined with biochars at varying proportions, and the impacts on physicochemical properties, total heavy metal concentrations, bioavailable fractions, and chemical speciation were analyzed. Results showed that mucus addition increased sludge pH and electrical conductivity (EC) but decreased total nitrogen (TN) and total phosphorus (TP) contents. Synergistic mucus-biochar composting further elevated pH and EC while reducing TN, with the optimal treatment being mucus plus 10% rice husk biochar. Mucus-only composting reduced total concentrations and bioavailability of Cd, Cu, Ni, Zn, and Pb. Adding biochars significantly enhanced these reductions. Specifically, mucus with rice husk biochar achieved the best Cd removal, with total and bioavailable Cd decreasing by 27.03%–55.68% and 9.52%–28.57% (P<0.05), respectively, compared to controls. Mucus with straw biochar was most effective for Ni, Zn, and Pb, reducing total contents by 3.81%–5.72%, 7.93%–34.62%, and 42.61%–79.46%, and bioavailable fractions by 2.90%–26.31%, 15.58%–24.14%, and 32.30%–36.88% (P<0.05), respectively. Speciation analysis revealed that Cd, Ni, and Pb carbonate-bound fractions transformed into residual forms, and exchangeable fractions shifted to Fe-Mn oxide-bound forms. Straw biochar addition resulted in the highest residual fractions for Cd, Cu, Ni, Zn, and Pb, increasing by 0.35%–7.02%, 8.61%–12.90%, 16.62%–23.02%, 17.33%–26.10%, and 16.12%–27.20% (P<0.05), respectively. These findings demonstrate that earthworm mucus combined with rice husk or straw biochar effectively reduces heavy metal concentrations and bioavailability in sludge, offering a promising strategy for sludge composting.

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/s40843-026-4109-2

Ambient Fabrication of Over 19% Efficient Organic Solar Cells via Spontaneous Water-Spreading and Layer-by-Layer Deposition

The fabrication of high-efficiency organic solar cells (OSCs) under ambient conditions remains a formidable challenge due to the sensitivity of active layer morphology to environmental factors. We propose an innovative approach for air-processed devices that combines spontaneous water-spreading film formation with layer-by-layer (LBL) deposition. This method enables the fabrication of donor- and acceptor-dominant bulk heterojunction blend films near the anode and cathode interfacial layers, respectively, optimizing vertical phase separation and enhancing charge transfer efficiency. In the D18:L8-BO system, the device achieves a power conversion efficiency (PCE) of 19.02% with an exceptionally narrow efficiency distribution. Even for devices with an area of 1 cm2, a PCE of 16.56% is attained. After a 1000-hour decay test, the efficiency retains 84.1%. This novel method offers a promising pathway for advancing the industrial application of large-area, highly stable devices with narrow efficiency distribution under ambient conditions.