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Water Electrolysis for Green Hydrogen: Low-Iridium PEM & High-Pressure Alkaline Systems

Decoded Chinese advances in catalyst loading reduction, anion exchange membranes (AEM), and gigawatt-scale hydrogen production projects in Xinjiang and Inner Mongolia.

Primary Focus: Green Hydrogen & ElectrolyzersCurated Papers: 24 Verified StudiesDomain Authority: SinoGreenTech

State-of-the-Art Executive Brief & Commercialization Roadmap

China is building the worlds largest mega-scale green hydrogen hubs in Inner Mongolia and Xinjiang, powered directly by off-grid desert wind and solar gigafarms. Academic research from Tsinghua University and CAS Dalian Institute of Chemical Physics has dramatically reduced the capital cost of Proton Exchange Membrane (PEM) water electrolyzers. By synthesizing core-shell IrOx@TiO2 and ruthenium-doped ordered catalysts, Chinese laboratories have lowered iridium loading from 2.0 mg/cm^2 to below 0.3 mg/cm^2 while sustaining current densities of 2.0 A/cm^2 at 1.8V. Simultaneously, Chinese manufacturers (SANY, Sungrow, Longi Hydrogen) have scaled alkaline electrolyzer stacks to 2,000 Nm^3/h with dynamic load following capabilities tailored to renewable volatility.

Core Technical Benchmarks & Performance Thresholds

PEM Anode Iridium Specific Loading
< 0.35 mg/cm^2
Near 80% catalyst cost reduction
Electrolyzer Stack Unit Capacity
2,000 Nm^3/h
High-pressure alkaline standard module
Stack Energy Consumption
< 4.2 kWh/Nm^3 H2
At nominal operational temperature (80 °C)
Dynamic Load Response Range
10% - 120%
Enables direct integration with fluctuating solar/wind

Lead Research Institutions & Enterprise Innovators

🏛️ CAS Dalian Institute of Chemical Physics (DICP)🏛️ Tsinghua University (State Key Lab of Power System)🏛️ Sinopec Petroleum Chemical Research Institute🏛️ Longi Hydrogen🏛️ SANY Hydrogen Energy

Verified Chinese Research Papers in Green Hydrogen & Electrolyzers

24 Studies Indexed
Research PaperYear: 2026
Hydrophilic Single-Atom Interface Unlocks Low-Potential CO Removal on Pt in PEMFCs

Hydrophilic Single-Atom Interface Unlocks Low-Potential CO Removal on Pt in PEMFCs

Proton exchange membrane fuel cells (PEMFCs) fed with reformate hydrogen suffer severe anode poisoning by trace CO, necessitating high CO electrooxidation potentials that degrade performance and durability. This work introduces a Pt@CrSA-N-C anode catalyst featuring a hydrophilic Cr single-atom interface that simultaneously weakens CO adsorption on Pt via electronic regulation and promotes water activation, thereby lowering the CO oxidation onset potential to approximately 0.13 V vs. RHE. The onset potential was determined by two independent methods: the first potential at which the background-corrected current exceeds 0 mA cm-2 during CO oxidation reaction tests in a three-electrode system, and the potential at which the forward scan current exceeds the N2 background current in CO-stripping voltammetry. The catalyst achieves a maximum power density under 100 ppm CO that surpasses reported advanced catalysts, as compiled in Table S5. Structural, spectroscopic, and electrochemical characterizations collectively establish a coherent rationale for the hydrophilic single-atom interface strategy. This approach addresses the longstanding trade-off between CO tolerance and Pt utilization, offering a viable route for low-potential CO removal in practical PEMFC anodes.

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Research PaperYear: 2026
Ce-induced dynamic electron buffering to regulate controllable surface reconstruction of Co for alkaline oxygen evolution reaction

Ce-induced dynamic electron buffering to regulate controllable surface reconstruction of Co for alkaline oxygen evolution reaction

Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.

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Research PaperYear: 2026
Crystal-Phase Engineering of 4H-Phase High-Entropy Alloy Core–Shell Nanowires for Durable Acidic Water Electrolysis

Crystal-Phase Engineering of 4H-Phase High-Entropy Alloy Core–Shell Nanowires for Durable Acidic Water Electrolysis

The development of high-entropy alloy (HEA) electrocatalysts for proton exchange membrane water electrolysis (PEMWE) is constrained by the thermodynamic instability of unconventional crystal phases and the trade-off between activity and durability under acidic oxygen evolution reaction (OER) conditions. This work demonstrates that crystal-phase engineering, using Au nanowires (NWs) as a crystallographic template, stabilizes a 4H-phase HEA core–shell nanostructure (4H-Au@4H-IrPtNiFeCo NWs) that is otherwise inaccessible via conventional synthesis. The 4H-phase HEA electrocatalyst achieves a current density of 3000 mA cm−2 at 1.90 V and maintains stable operation for over 1200 h at 1000 and 2000 mA cm−2 in a PEMWE device. These device-level metrics indicate that the advantage of the 4H-phase HEA extends beyond half-cell measurements, translating into improved PEMWE performance. The unique combination of unconventional atomic stacking, electronic modulation, multielement synergy, and enhanced thermal stability underpins the enhanced acidic water electrolysis performance. This study positions crystal phase, alongside composition, morphology, and surface structure, as a key design parameter for high-performance HEA catalysts in energy conversion and chemical transformation.

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Research PaperYear: 2026
Rational Design of Oxygen Electrocatalysts Guided by Reaction Intermediates

Rational Design of Oxygen Electrocatalysts Guided by Reaction Intermediates

Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.

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Research PaperYear: 2026

Construction of fully octahedral-coordinated Co3O4 for efficient acidic water electrolysis

Proton exchange membrane water electrolysis (PEMWE) enables green hydrogen production from renewable electricity but relies on scarce Ir/Ru catalysts for the kinetically sluggish and acid-stable oxygen evolution reaction (OER). Non-noble-metal oxides typically suffer rapid dissolution and structural collapse under acidic, high-current conditions. Conventional cubic spinel Co3O4 (C-Co3O4) contains both inactive tetrahedral Co and active octahedral Co sites; tetrahedral dissolution destabilizes the framework. A recently reported trigonal Co3O4 phase (Tri-Co3O4), synthesized via vacuum-mediated molten-alkali mechanochemical methods, consists entirely of edge-shared [CoO6] octahedra in a compact two-dimensional layered structure. This configuration eliminates tetrahedral sites and exposes abundant octahedral active centers. Structural characterization by X-ray diffraction confirms strong (0001) and (0002) reflections, while Co K-edge EXAFS shows only Co-Cooct coordination without Co-Cotet signals. Tri-Co3O4 achieves 10 mA cm-2 at an overpotential of 269 mV, 181 mV lower than C-Co3O4 (450 mV), with low cobalt dissolution and 2500 h operation at 1.7 V in a practical PEMWE device. In situ XAFS reveals minimal Co oxidation-state change and nearly unchanged Co-O coordination during OER, confirming octahedral framework stability. DFT calculations identify the Tri-Co3O4 (10-10) facet as closest to the volcano apex, with balanced *OH and *O adsorption favoring the adsorbate evolution mechanism. Stability arises from coupled coordination, dimensional, and valence effects: outer-layer Co3+ provides high activity, middle-layer Co2+ stabilizes the lattice, and weak out-of-plane van der Waals interactions increase the energy barrier for Co removal. This highlight critically evaluates the mechanistic origins, unresolved questions regarding metastable phase generality, synthesis scalability, and long-term structural evolution under PEMWE operation.

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Research PaperYear: 2026
Potential-Dependent Stability of Iridium–Cobalt Oxide Nanosheets for Proton Exchange Membrane Water Electrolysis

Potential-Dependent Stability of Iridium–Cobalt Oxide Nanosheets for Proton Exchange Membrane Water Electrolysis

Iridium-doped cobalt oxide nanosheets derived from a ZIF template were evaluated as oxygen evolution reaction (OER) catalysts for proton exchange membrane water electrolysis (PEMWE). Residual carbon was removed via a post-synthetic treatment to isolate intrinsic catalytic behavior. The Ir0.23Co0.77Ox catalyst exhibited enhanced activity and durability relative to commercial IrO2 in a practical PEMWE device. Potential-dependent, stage-resolved characterization combined with theoretical calculations probed catalyst stability under different operating voltages, revealing degradation mechanisms tied to applied potential. Contact angle measurements showed that the Ir0.23Co0.77Ox membrane electrode assembly (MEA) had water and air contact angles of 126° and 143°, respectively, compared to 126° and 143° for an IrO2 MEA at identical Ir loading, indicating improved wettability and gas release behavior. The work provides a framework for understanding potential-dependent stability in acidic OER catalysts and demonstrates a viable route to reduce Ir loading while maintaining PEMWE performance.

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Research PaperYear: 2026
Electronic structure modulation of NiIr(OH)6 perovskite hydroxide for chlorine-resistant electrolytic seawater

Electronic structure modulation of NiIr(OH)6 perovskite hydroxide for chlorine-resistant electrolytic seawater

Direct seawater electrolysis offers a cost-effective route to clean hydrogen, but the competitive chlorine evolution reaction (CER) and electrode corrosion impede practical deployment. A NiIr(OH)6 perovskite hydroxide catalyst was synthesized via one-step co-precipitation. In alkaline seawater, it requires only 330 mV overpotential to reach 100 mA cm-2 and sustains 190 h in multi-current step testing. In situ Raman spectroscopy shows that Ir species promote the formation of active NiOOH phases, accelerating oxygen evolution reaction (OER) kinetics. Density functional theory calculations reveal that Ir doping modulates the electronic structure of Ni and Ir sites, strengthening OH adsorption (-2.09 eV) and suppressing Cl- adsorption (-1.38 eV), thereby enhancing OER selectivity. An overall seawater electrolyzer with NiIr(OH)6 || Pt/C delivers 100 mA cm-2 at 1.63 V and operates stably for over 100 h. This work provides a rational design strategy for high-efficiency, corrosion-resistant electrocatalysts for seawater electrolysis.

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Research PaperYear: 2026
Electrocatalytic Ammonia Oxidation Reaction: From Active Site Regulation to Industrial Device Systems

Electrocatalytic Ammonia Oxidation Reaction: From Active Site Regulation to Industrial Device Systems

The electrocatalytic ammonia oxidation reaction (AOR) is pivotal for sustainable energy conversion and storage, enabling direct ammonia fuel cells (DAFCs), ammonia electrolysis, and solid oxide fuel cells. This review critically examines recent advances in AOR catalysis, emphasizing active-site regulation, interfacial engineering, and device-oriented catalyst development. For noble-metal catalysts, optimizing adsorption and dehydrogenation of NHx intermediates while mitigating poisoning is essential for sustained activity. Non-noble-metal systems, particularly Ni-based catalysts, require precise control of reconstructed working-state phases such as NiOOH-like species to balance activity and selectivity. Interfacial engineering, including heterointerfaces, defect structures, and doped coordination environments, strongly influences the competition between AOR and oxygen evolution reaction (OER), as well as product branching toward N2 or oxygenated nitrogen species. The review underscores that catalyst optimization now extends beyond bulk composition to the precise regulation of the interfacial reaction microenvironment. Furthermore, practical device operation is governed by membrane/electrolyte compatibility, mass transport, ammonia crossover, thermal management, and long-term durability. Bridging fundamental catalyst studies with deployable ammonia energy technologies requires coordinated optimization from active materials to electrode architectures and full-device systems. This review provides a comprehensive framework for designing next-generation AOR catalysts and accelerating their integration into industrial energy systems.

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Research PaperYear: 2026
Breaking the Conductivity–Selectivity Trade-off in Nafion via Synergistic Molecular Modification for High-Performance Vanadium Redox Flow Batteries

Breaking the Conductivity–Selectivity Trade-off in Nafion via Synergistic Molecular Modification for High-Performance Vanadium Redox Flow Batteries

Developing ion exchange membranes with both high proton conductivity and high selectivity is crucial for vanadium redox flow batteries (VRFBs). Commercial Nafion membranes suffer from severe vanadium crossover, while conventional additives often aggregate, disrupting ion domains and significantly reducing proton conductivity. To overcome this conductivity–selectivity trade-off, we propose a modification strategy based on molecular-level functional strategy. Two complementary additives, polyvinylpyrrolidone (PVP) and a fluoroalkyl-grafted polyoxometalate cluster (8FSiW11), are introduced into Nafion matrix to achieve precise, cooperative, regulation of ionic domains. PVP fills ion domains via hydrogen bonding and electrostatic interactions, constructing an efficient barrier against vanadium ions. Simultaneously, 8FSiW11 anchors at the hydrophilic/hydrophobic interface, providing additional proton sources and hopping sites to compensate for proton neutralization by PVP. The resulting hybrid membrane exhibits a proton/vanadium selectivity of 1×10^6 S min cm^-3, 8.6 times higher than commercial Nafion 212 (NR212), and enables VRFB energy efficiencies (EE) of 88.9% at 100 mA cm^-2 and 83.2% at 200 mA cm^-2. This work demonstrates the potential of synergistic molecular modification strategy to break conductivity–selectivity trade-off in membrane design for next-generation high-performance VRFBs.

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Research PaperYear: 2026
Amino Acid Intercalated Iron-Rich NiFe-LDHs with Low-Spin Fe3+ for Oxygen Evolution Reaction Electrocatalysis

Amino Acid Intercalated Iron-Rich NiFe-LDHs with Low-Spin Fe3+ for Oxygen Evolution Reaction Electrocatalysis

The sluggish kinetics of the oxygen evolution reaction (OER) remains a bottleneck for efficient water splitting. NiFe-layered double hydroxides (LDHs) are promising OER catalysts, but their performance is often limited by the high-spin state of Fe3+ and poor structural stability. Here, we report a series of amino acid-intercalated iron-rich NiFe-LDHs (AA-NiFe-LDHs) synthesized via a facile one-step coprecipitation method. Intercalation of glycine, alanine, and valine into the interlayer galleries expands the interlayer spacing and induces a partial transition of Fe3+ from high-spin to low-spin state, as confirmed by X-ray absorption spectroscopy and Mössbauer spectroscopy. The low-spin Fe3+ enhances the intrinsic catalytic activity by optimizing the adsorption energy of oxygen intermediates. Among the series, the glycine-intercalated sample (Gly-NiFe-LDH) exhibits the best OER performance in 1.0 M KOH, with an overpotential of 240 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, significantly outperforming the pristine NiFe-LDH (280 mV, 52 mV dec−1). Moreover, Gly-NiFe-LDH shows excellent long-term stability, retaining 95% of its initial activity after 24 h of chronopotentiometry at 10 mA cm−2. The intercalation also increases the electrochemically active surface area by 2.3-fold and reduces the charge transfer resistance from 12.5 Ω to 4.8 Ω. This work demonstrates that amino acid intercalation is an effective strategy to modulate the spin state of Fe3+ and enhance the OER performance of NiFe-LDHs, providing a new avenue for designing high-efficiency, low-cost electrocatalysts.

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Research PaperYear: 2026
Defect Engineering Activated Lattice Oxygen Mechanism in High-Entropy LDHs for Highly Active and Durable Oxygen Evolution

Defect Engineering Activated Lattice Oxygen Mechanism in High-Entropy LDHs for Highly Active and Durable Oxygen Evolution

Developing highly active and stable electrocatalysts based on the lattice oxygen mechanism (LOM) for the oxygen evolution reaction (OER) represents a significant challenge in water splitting. Herein, we successfully introduce oxygen vacancies (Ov) into high-entropy MnFeCoNiCu layered double hydroxides (HE-LDHs) via a solution chemical reduction method utilizing a defect engineering strategy. By precisely tuning the concentration of oxygen vacancies, we effectively activate the lattice oxygen within the HE-LDHs. The optimized Ov-rich high-entropy LDHs (Ov-HE-LDHs) exhibit excellent OER catalytic performance, achieving a current density of 10 mA cm−2 with a remarkably low overpotential of only 210 mV in 1.0 M KOH electrolyte, which is substantially superior to pristine HE-LDHs (315 mV) and commercial IrO2 (330 mV). Furthermore, the catalyst demonstrates outstanding long-term stability, capable of stable operation for 500 h at a high current density of approximately 200 mA cm−2. Advanced X-ray absorption fine structure analysis elucidates the lower metal valence states, indicating the existence of oxygen vacancies, while isotope labeling experiments and in-situ electrochemical Raman spectroscopy strongly confirm the successful activation of the LOM pathway. Density functional theory calculations further validate that the shift in the OER mechanism towards LOM and the resulting reduction in the reaction energy barrier are the fundamental reasons for the catalyst’s enhanced intrinsic activity. This work proposes a novel strategy for activating lattice oxygen in high-entropy LDHs through defect engineering, offering new insights and experimental guidance for the design and development of highly efficient and stable high-entropy OER electrocatalysts.

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Research PaperYear: 2026
Synergistic Multi-Metal and Defect Engineering for High-Efficiency Hydrogen Evolution Reaction

Synergistic Multi-Metal and Defect Engineering for High-Efficiency Hydrogen Evolution Reaction

Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.

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Research PaperYear: 2026
Incorporating Triphenylamine Chromophores into Covalent Triazine Frameworks for Effective Photocatalytic Aerobic Oxidations

Incorporating Triphenylamine Chromophores into Covalent Triazine Frameworks for Effective Photocatalytic Aerobic Oxidations

Rational design and construction of effective photocatalysts is a promising way for green and sustainable chemistry, but still a great challenge. Herein, taking triphenylamine-containing aldehydes as reactants, two covalent triazine frameworks (CTFs), tris(4-formylphenyl)amine (TPA)-CTF and tris(4-formylbiphenyl)amine (TBPA)-CTF, were rationally constructed. The strong electron donor property of the triphenylamine moieties derived from the initial reactants and the strong electron acceptor nature of the in-situ formed built-in triazine rings in CTFs endowed these robust triphenylamine-based CTFs with donor-acceptor (D-A) or donor-π-acceptor (D-π-A) structure features. Photocatalytic experiments revealed that, compared with the controlled phenyl analogue CTF, 1,3,5-tri(p-formylphenyl)benzene (TFPB)-CTF, both of the triphenylamine-based CTFs exhibited superior photocatalytic activity not only in photocatalytic hydrogen peroxide generation, but also in photocatalytic aerobic oxidations of diverse organic substrates. Theoretical studies further confirmed that their enhanced photocatalytic performance should be attributed to their unique D-A or D-π-A features in the constructed triphenylamine-based CTFs. This work successfully demonstrated that rational selection of reactants containing electron donor moieties to construct CTFs should be a reliable way for the construction of effective photocatalysts for photocatalytic oxidation reactions.

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Research PaperYear: 2026
Cl−-Driven Pathway Switching Enables Efficient Industrial-Current Seawater Oxidation on Dual-Atom Catalysts

Cl−-Driven Pathway Switching Enables Efficient Industrial-Current Seawater Oxidation on Dual-Atom Catalysts

Direct seawater electrolysis offers a promising route to green hydrogen production, circumventing freshwater scarcity. However, the presence of chloride ions (Cl−) poses severe challenges, including competing chlorine evolution reaction (CER) and corrosion of anode catalysts. Here, we report a dual-atom catalyst design, RuCr-Ni3P, where Ru atoms with strong chloride affinity and Cr atoms as Lewis acid centers are co-doped into a nickel phosphide matrix. This catalyst exhibits outstanding oxygen evolution reaction (OER) activity and selectivity in alkaline seawater, achieving stable operation for over 4000 hours at industrially relevant current densities. Mechanistic studies reveal that Cl− ions are selectively captured by Ru sites, forming a dynamic Ru–Cl coordination motif that electronically modulates adjacent Ni centers, promoting the formation of high-valent Ni>3+ species. This switches the OER pathway from the lattice oxygen mechanism (LOM) to the more efficient adsorbate evolution mechanism (AEM). Concurrently, Cr sites facilitate the formation of Cr–OH species, creating a localized alkaline microenvironment that further enhances OER kinetics. This dual-site synergistic mechanism transforms Cl− from a detrimental impurity into a beneficial chemical switch, concurrently enhancing both activity and stability. Our findings provide a paradigm shift in seawater electrolysis catalyst design, turning a longstanding challenge into an opportunity for efficient and durable hydrogen production.

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Research PaperYear: 2026
Facile Construction of Self-Supported Ru-Ni(OH)2 with Built-In Interfacial Electric Field for Accelerating Hydrogen Evolution

Facile Construction of Self-Supported Ru-Ni(OH)2 with Built-In Interfacial Electric Field for Accelerating Hydrogen Evolution

Sluggish water dissociation kinetics in the alkaline hydrogen evolution reaction (HER) hamper its practical production. Here, a heterojunction electrocatalyst featuring Ru-Ni(OH)2 interfaces on nickel foam (NF) with self-engineered built-in electric fields (BIEF) was synthesized via a simple in situ galvanic replacement reaction. The hierarchical Ru-Ni(OH)2/NF exhibits a record overpotential of 9.6 mV at 10 mA cm−2 for alkaline HER, surpassing most reported catalysts and commercial Pt/C. It also shows exceptional activity for hydrazine oxidation reaction (HzOR) at 100 mA cm−2 with a remarkably low potential of ca. 0.015 V vs. RHE. The assembled overall hydrazine splitting (OHzS) system integrating HER and HzOR requires a cell voltage of about 0.09 V to reach 50 mA cm−2, which is 1.637 V lower than the corresponding overall water splitting (OWS) device. Systematic analysis and calculation reveal that the BIEF induces redistribution of interfacial electrons for Ru, facilitating H2O dissociation and intermediate conversion, delivering ultra-high electrocatalytic performance. This work provides an avenue for design and preparation of electric field-mediated catalysts towards sustainable energy conversion.

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Research PaperYear: 2026
Self-supported partially crystallized nanoporous metallic glass for ultra-stable and efficient electrocatalytic hydrogen evolution

Self-supported partially crystallized nanoporous metallic glass for ultra-stable and efficient electrocatalytic hydrogen evolution

Metallic glasses (MGs) often suffer from sluggish hydrogen evolution reaction (HER) kinetics in neutral and alkaline media, with their catalytic performance predominantly confined to acidic environments. Herein, we reported a novel thermoplastic forming technique to fabricate a self-supported partially crystallized nanoporous Pt56.2Ni5.2Cu16.8P21.8 metallic glass (C-NPMG). The C-NPMG catalyst delivers ultralow overpotentials of 18.0 mV (0.5 M H2SO4), 42.2 mV (1 M KOH), and 88.0 mV (1 M phosphate-buffered saline (PBS)) at a current density of 10 mA cm−2, outperforming most state-of-the-art non-noble MGs and Pt-based benchmarks across all pH conditions. Notably, it maintains negligible performance decay for over 1000 h in alkaline electrolytes, showcasing superior stability. Experimental and computational analyses reveal that the enhanced HER activity arises from three synergistic effects: (1) the high-specific-surface-area nanoporous architecture that maximizes active site exposure; (2) the formation of crystallite-amorphous interfaces during partial crystallization, which lowers the energy barrier for H2 desorption; (3) the hierarchical super-hydrophilic and super-hydrophobic wettability of the C-NPMG, which optimizes mass transport and prevents electrolyte-induced corrosion. This work establishes a novel design paradigm for developing high-performance, pH-universal HER electrocatalysts by integrating structural nano-engineering and crystallite-amorphous phase synergy in metallic glass systems to overcome the trade-offs between performance and stability in electrochemical water splitting.

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Research PaperYear: 2026
Nanofunctionalized Chlorella cells with photo stimulation for biological hydrogen production

Nanofunctionalized Chlorella cells with photo stimulation for biological hydrogen production

Hydrogen production by photosynthetic green algae is an efficient biological process that utilizes light energy to convert water and carbon dioxide into clean and renewable energy. In this paper, we constructed a hybrid system combining graphitic carbon nitride (g-C3N4) and Chlorella pyrenoidosa (Chlorella), in which g-C3N4 serves as an extracellular electron source and Chlorella acts as a biological reactor for specific hydrogen production. In particular, the electronic structure of carbon nitride was optimized by means of hydrothermal alkalization and copper ion doping, expanded the light absorption range and enhanced the light response ability. g-C3N4, as an extracellular electron source, can provide electrons for Chlorella to improve hydrogen production performance which is 3.7 times that of bare Chlorella. The construction of a biological hybrid system is a feasible optimization strategy for the hybrid system to promote the synergistic effect of the hybrid system by regulating the properties of non-living components.

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Research PaperYear: 2026
Breakthrough in Single Atom Fe Catalysts for Acidic Oxygen Reduction

Breakthrough in Single Atom Fe Catalysts for Acidic Oxygen Reduction

Proton exchange membrane fuel cells (PEMFCs) are a promising sustainable energy conversion technology due to their environmental friendliness and high efficiency. However, the sluggish kinetics of the four-electron oxygen reduction reaction (ORR) necessitate cathode catalysts requiring over five times the amount of precious metal Pt compared to the anode, limiting widespread PEMFC application. The U.S. Department of Energy emphasizes developing non-precious metal-based catalysts as cost-effective alternatives. Transition metal single atoms (Mn, Co, Cu) anchored on nitrogen-doped carbon (M–N–C) have been developed as efficient ORR electrocatalysts, but most exhibit excellent performance only in alkaline media. The typical MN4 planar coordination renders the central metal vulnerable to hydrogen ion attack, challenging activity and durability in acidic media. Recent studies propose that axial-N coordination enhances stability of atomically dispersed Fe sites for acidic ORR by creating a barrier to Fe dissolution. The induced square-pyramidal crystal field diminishes spin polarization in dz2, dxz, and dyz orbitals, enhancing electronic delocalization of the Fe atom, allowing adsorbed O2 to maintain a low-energy triplet ground state, facilitating activation and reduction. Wang and coworkers constructed a novel curved-surface Fe–N–C (CS Fe/N–C) catalyst with FeN4 single atoms distributed within graphitized multilayered nanoprotrusions on 2D carbon layers. The nanoprotrusions have a mean diameter of ~10 nm and protrude ~4 nm. The curved regions exhibit a high Fe site density of ~1.6 No. nm−2, with 97.6% located deep in the fourth layer, contrasting with lower and more random distribution in planar regions and 2D Fe/N–C. This distribution aligns with iron atom diffusion from core to outer layers during pyrolysis.

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Research PaperYear: 2026
Ruthenium-Based Electrocatalysts for Electrochemical Water Splitting: A Review of Fundamentals, Synthesis, and Enhancement Strategies

Ruthenium-Based Electrocatalysts for Electrochemical Water Splitting: A Review of Fundamentals, Synthesis, and Enhancement Strategies

Ruthenium-based materials, including metallic Ru and RuO2, are promising electrocatalysts for electrochemical water splitting (EWS) due to their high activity for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). However, their practical application is hindered by the relatively strong adsorption of reaction intermediates on Ru surfaces and the oxidative dissolution of RuO2 under operating conditions. This review provides a comprehensive overview of recent progress and challenges in Ru-based electrocatalysts for EWS. We first summarize the fundamentals of EWS, including reaction mechanisms and activity descriptors. Then, we detail typical synthesis methods such as hydrothermal/solvothermal syntheses, organic ligand-assisted syntheses, pyrolysis, acid etching, cation exchange, and molten salt-assisted syntheses. Subsequently, we focus on enhancement strategies, including alloying, doping, structure design, interface engineering, single-atom catalyst design, high-entropy alloy design, phase engineering, and defect engineering, with typical examples illustrating structure-property correlations. Finally, we address remaining challenges and future prospects for the development of efficient and durable Ru-based electrocatalysts for sustainable hydrogen production.

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Research PaperYear: 2026
Oxophilic Sites Activate Asymmetric IrNi Atomic Dimers and Clusters for Efficient Hydrogen Oxidation and CO Tolerance

Oxophilic Sites Activate Asymmetric IrNi Atomic Dimers and Clusters for Efficient Hydrogen Oxidation and CO Tolerance

Multi-site coupling is a promising strategy for developing highly efficient and CO-resistant hydrogen oxidation reaction (HOR) catalysts for proton exchange membrane fuel cells (PEMFCs). However, designing multifunctional synergistic schemes for single-atom sites remains a significant challenge. Herein, we propose a dual-template-confined oxophilic engineering strategy to construct well-dispersed iridium-nickel (IrNi) atomic dimers adjacent to IrNi nanoclusters on porous nitrogen-doped carbon (IrNi Dimer/NC1.8-PNC). The paired IrNi dimer features an asymmetric Ir-N3 configuration coordinated with heteroatomic Ni-N3O via an N-bridge. Remarkably, IrNi Dimer/NC1.8-PNC exhibits a ~23-fold enhancement in mass activity (4.36 A mg−1 Ir at 20 mV) and 5-fold longer stability compared to benchmarking Pt/C toward HOR, while achieving a high rated power density of 1.18 W cm−2 in PEMFC anode applications. Furthermore, IrNi Dimer/NC1.8-PNC demonstrates superior CO tolerance over monometallic Ir and Pt/C in both half-cell and full-cell devices. Combined experimental and density functional theory studies reveal that oxophilic Ni modulates the electronic environment of Ir through alloying and dimer interactions, thereby enhancing HOR activity. Importantly, the asymmetric IrNi dimer enables efficient CO* and OH* co-adsorption while facilitating CO2* desorption, synergistically mitigating CO poisoning and improving atom utilization efficiency. This work provides a design strategy and fundamental insights for multi-site synergistic catalysts in PEMFC anodes.

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Research PaperYear: 2026
Rational Design of Atomic Skin Layers with Low Ir–Ir Atomic Distance for Highly Efficient OER Catalysts

Rational Design of Atomic Skin Layers with Low Ir–Ir Atomic Distance for Highly Efficient OER Catalysts

The development of catalysts with highly efficient oxygen evolution performance and low-Ir loading is key to scaling up the application of proton exchange membrane (PEM) water electrolysis technology. Here, an Ir-skin catalyst (Ir@KM) is realized on a potassium-manganese oxide (K0.25MnOx (KM)) using an ion-exchange method. The Ir-skin over the prepared Ir@KM has a low Ir–Ir atomic distance, endowing an energetically favorable oxide path mechanism to allow a low theoretical overpotential of 0.13 V. Ir@KM offers a low overpotential of ~280 mV at a current density of 10 mA cm−2 and provides a high mass activity of up to 18,500 A gIr−1 at a cell voltage of 1.8 V in PEM, which is 17.6 times higher than that of IrO2, demonstrating a significant advantage in reducing the cost of the membrane electrode. The presented Ir-skin concept represents a promising strategy to fabricate low-Ir catalyst with high activity and durability for practical applications of PEM.

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Research PaperYear: 2026
Emission Reduction Effects and Costs of Energy Policies under Carbon Neutrality Pathways in Guangdong Province

Emission Reduction Effects and Costs of Energy Policies under Carbon Neutrality Pathways in Guangdong Province

To mitigate global warming, regional carbon neutrality pathways are critical. Based on the Guangdong Energy Policy Simulator (EPS) model, this study simulates total energy consumption and greenhouse gas (GHG) emissions under baseline, Carbon Neutral 60 (CN60), and Carbon Neutral 50 (CN50) scenarios, and analyzes the emission reduction effects and costs of various energy policies. Results show that by 2060, total energy consumption under CN60 and CN50 decreases by 39% and 44% relative to baseline, respectively. Primary electricity and other energy, natural gas, oil, and coal account for 56%, 26%, 14%, and 4% under CN60, and 60%, 24%, 13%, and 3% under CN50. GHG emissions under CN60 drop to 80×10^6 tCO2e by 2060, an 89% reduction from 2020; under CN50, emissions reach 92 and 55×10^6 tCO2e in 2050 and 2060, respectively, reductions of 87% and 92% from 2020. Policies such as increasing clean electricity share, industrial electrification (hydrogen), increasing green power purchases, building electrification, F-gas reduction, and improving industrial energy efficiency standards show significant reduction effects, with clean electricity share being the primary source. Policies like improving industrial energy efficiency standards, increasing industrial product utilization, and increasing clean energy vehicle market penetration are cost-effective; increasing clean electricity share, green power purchases, building electrification, and F-gas reduction effectively balance reduction effects and costs. Industrial electrification (hydrogen) contributes >5% cumulative reduction but faces economic challenges for full-scale promotion in the short term; industrial carbon capture and storage and electrolytic hydrogen contribute <2% cumulative reduction with high costs. Therefore, Guangdong should prioritize cost-effective policies, promote balanced policies, gradually optimize energy structure, achieve clean electricity, and foster green industrial transformation to achieve carbon neutrality at lower economic cost.

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Research PaperYear: 2026
Recent Advances in CO2 Hydrogenation to Light Olefins

Recent Advances in CO2 Hydrogenation to Light Olefins

The catalytic hydrogenation of carbon dioxide (CO2) to light olefins (C2–C4) represents a pivotal route for mitigating greenhouse gas emissions while producing high-value chemical feedstocks. This review systematically examines the two principal technological pathways: CO2-Fischer-Tropsch synthesis (CO2-FTO) and CO2-methanol-to-olefins (CO2-MTO). The CO2-FTO route couples reverse water-gas shift (RWGS) with Fischer-Tropsch synthesis, whereas CO2-MTO proceeds via methanol intermediate. Key challenges arise from the thermodynamic stability of CO2 (C=O bond dissociation energy ~750 kJ/mol) and kinetic limitations. The review critically evaluates the influence of catalyst promoters (e.g., Na, Mn, Cu), support structures, and surface defect site concentrations on CO2 activation and olefin selectivity. For zeolite-based catalysts, pore architecture and acidity are shown to govern methanol conversion to olefins. Representative data from the literature indicate that Fe-based catalysts with Na promotion achieve CO2 conversion up to 40% with olefin selectivity exceeding 50% under optimized conditions. The review underscores the necessity of integrating catalyst design with reactor engineering to overcome thermodynamic constraints and achieve industrially viable performance.

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Research PaperYear: 2026
Metabolic Functions of Anoxygenic Photosynthetic Bacteria and Their Applications in Environmental Engineering

Metabolic Functions of Anoxygenic Photosynthetic Bacteria and Their Applications in Environmental Engineering

Anoxygenic photosynthetic bacteria (APB) are a phylogenetically diverse group of prokaryotes that perform photosynthesis without oxygen evolution. They possess versatile metabolic capabilities, including anaerobic photophosphorylation, carbon fixation, multi-substrate metabolism, and metal oxidation-reduction, enabling them to thrive in diverse environments such as lakes, rivers, soils, salt lakes, and hot springs. APB play a pivotal role in biogeochemical cycling of carbon, nitrogen, sulfur, and metals. This review systematically summarizes the metabolic diversity of APB, emphasizing their ability to utilize organic and inorganic compounds as electron donors and carbon sources. We highlight recent advances in understanding extracellular electron transfer (EET) mediated by exogenous electron shuttles and conductive materials, which expand the electron sources available for energy generation and reducing power. In environmental engineering, APB show promise in carbon sequestration, pollutant degradation (including azo dyes and heavy metals), biohydrogen production, and microbial fuel cells. For instance, Rhodopseudomonas palustris can fix CO2 under dark anoxic conditions via syntrophic interspecies electron transfer, achieving enhanced carbon fixation. Additionally, APB-based biohybrid systems incorporating CdS nanoparticles demonstrate light-driven degradation of azo dyes without external electron donors. Challenges remain in scaling up these technologies, optimizing reactor conditions, and understanding metabolic regulation. Future research should focus on genetic engineering to enhance APB performance and integrating APB into circular bioeconomy frameworks.

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Frequently Asked Technical Questions (Green Hydrogen & Electrolyzers)

Q:Why is China the lowest-cost producer of hydrogen electrolyzers globally?

Chinese alkaline electrolyzer capital costs are approximately one-third of European and US equivalents due to integrated domestic stainless steel fabrication, local catalyst supply chains, and massive economies of scale.

Q:How is China resolving the iridium scarcity bottleneck in PEM electrolysis?

Through conductive metal oxide support substrates (TiOx, Sb-SnO2), single-atom ruthenium doping, and transitioning toward platinum-group-free Anion Exchange Membrane (AEM) water electrolysis.

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