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All-Solid-State Lithium Batteries: Sulfide/Halide Electrolytes, Lithium Metal Anodes & Dry Electrode Processing

Commercialization roadmap, ionic conductivity breakthroughs, and pilot production line data from China’s leading battery giants and CAS laboratories.

Primary Focus: Solid-State BatteryCurated Papers: 24 Verified StudiesDomain Authority: SinoGreenTech

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

China is accelerating the transition from liquid lithium-ion to all-solid-state batteries (ASSBs) backed by the National All-Solid-State Battery Collaborative Innovation Platform (CASIP) uniting CATL, BYD, WeLion, QingTao, and top universities. Research centered at CAS Institute of Physics (IOP Beijing) and Tsinghua University has elevated sulfide solid electrolyte (Li6PS5Cl Argyrodite and Li10GeP2S12) ionic conductivity past 12 mS/cm, exceeding liquid electrolytes at room temperature. Major hurdles including chemo-mechanical cathode-electrolyte contact degradation and lithium dendrite propagation through grain boundaries are being overcome via atomic layer deposition (ALD) conformal coatings, composite polymer/ceramic interlayers, and solvent-free dry electrode calendering.

Core Technical Benchmarks & Performance Thresholds

Gravimetric Energy Density
> 500 Wh/kg
Packaged pouch cell with lithium metal anode
Volumetric Energy Density
> 1,000 Wh/L
Prismatic form factor benchmark
Room Temperature Ionic Conductivity
> 12 mS/cm
Argyrodite sulfide solid electrolyte
Cycle Life Retention (at 1C)
> 85% at 1,500 Cycles
Under 5 MPa external stack pressure

Lead Research Institutions & Enterprise Innovators

🏛️ CAS Institute of Physics (IOP Beijing)🏛️ Tsinghua University (Department of Chemical Engineering)🏛️ CATL (Contemporary Amperex Technology Co., Limited)🏛️ WeLion New Energy Technology🏛️ QingTao Energy Development Co.

Verified Chinese Research Papers in Solid-State Battery

24 Studies Indexed
Research PaperYear: 2026
Ammonium Vanadate Cathodes in Aqueous Zinc-Ion Batteries: Design Strategies and Research Progress

Ammonium Vanadate Cathodes in Aqueous Zinc-Ion Batteries: Design Strategies and Research Progress

Aqueous zinc-ion batteries (AZIBs) offer a compelling combination of high safety, environmental compatibility, and abundant zinc resources, positioning them as viable candidates for grid-scale energy storage. Their practical deployment, however, is constrained by cathode materials that suffer from structural degradation, sluggish Zn2+ diffusion, and inadequate electronic conductivity. Ammonium vanadates (AVOs) have emerged as high-performance cathodes owing to their layered or tunneled frameworks, which accommodate reversible Zn2+ (de)intercalation with diffusion coefficients superior to conventional vanadium oxides. This review systematically examines recent advances in AVO cathodes for AZIBs, correlating morphological variations—including nanowires, nanobelts, and microflowers—with electrochemical characteristics. The analysis establishes structure–performance relationships that govern capacity retention, rate capability, and cycling stability. Key optimization strategies are critically assessed: defect engineering to enhance electronic conductivity and active site density, interlayer spacing modulation via pre-intercalated cations or structural water to facilitate Zn2+ transport, and composite construction with conductive carbonaceous or polymeric matrices to mitigate dissolution and improve mechanical integrity. Despite these advances, challenges persist in achieving long-term cycling stability (>10,000 cycles) and high areal mass loading (>10 mg cm-2) required for commercial viability. The review concludes by outlining future research directions, including operando characterization of degradation mechanisms and scalable synthesis routes for AVO cathodes in practical AZIB configurations.

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Research PaperYear: 2026
Dual-Site Adsorption over Phosphorus-Doped Copper Oxide for Efficient CO2 Electroreduction to Ethylene

Dual-Site Adsorption over Phosphorus-Doped Copper Oxide for Efficient CO2 Electroreduction to Ethylene

Electroreduction of CO2 to ethylene offers a promising route for renewable electricity storage, yet achieving high ethylene selectivity at industrial current densities remains challenging due to the large energy barrier for C–C coupling. Here, we report a “MOF-assisted in situ doping” strategy to introduce the oxophilic nonmetal phosphorus (P) into the copper oxide (CuO) lattice, constructing a localized Cu–P dual-site adsorption configuration for the key *OCCHO intermediate. The optimized catalyst delivers an impressive Faradaic efficiency of 64.6% for ethylene with a partial current density of 646 mA cm-2. Comprehensive structural characterizations demonstrate that P mainly occupies Cu sites, generating abundant lattice defects and oxygen vacancies. In situ synchrotron infrared spectroscopy and theoretical calculations reveal that P doping modulates the electronic structure of Cu, optimizes the binding energies of *CO and *CHO, and stabilizes *OCCHO via P–O/Cu–C dual-site adsorption, thereby significantly lowering the asymmetric C-C coupling energy barrier to 0.74 eV. This work highlights a dual-site microenvironment regulation strategy for CO2-to-ethylene electroreduction.

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Research PaperYear: 2026
Microwave-Absorbing Materials with Strong Environmental Adaptability for Corrosion Protection, Anti-Icing, and Thermal Management

Microwave-Absorbing Materials with Strong Environmental Adaptability for Corrosion Protection, Anti-Icing, and Thermal Management

Microwave-absorbing materials (MAMs) deployed on naval vessels, aerospace vehicles, and critical electronic systems face coupled electromagnetic, marine salt-spray corrosion, and extreme-temperature loads that legacy single-function absorbers cannot withstand. This review consolidates progress on three environmentally adaptive MAM classes: corrosion-protective, anti-icing, and thermal-management absorbers. The electromagnetic loss and impedance-matching fundamentals are first established, then the synergistic mechanisms, design strategies, and characterization protocols for each class are examined against representative material systems and their measured performance. The analysis identifies a shared design logic—multiscale hierarchical architecture, interfacial polarization engineering, and multifunctional phase integration—while distinguishing the divergent protection mechanisms: barrier and passivation effects for corrosion, surface-energy and latent-heat regulation for anti-icing, and phonon–electron transport decoupling for thermal management. Persistent bottlenecks include the trade-off between impedance matching and protective-layer density, the absence of standardized coupled-field test protocols, and the scarcity of long-term salt-spray and thermal-cycling durability data. Future directions are delineated: intelligent self-adaptive absorbers, multiphysics-coupled simulation frameworks, and environmentally benign multifunctional integration. The review provides a theoretical and technical basis for the design, construction, and engineering scale-up of next-generation high-performance absorbers for aerospace, electronic, and marine equipment.

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Research PaperYear: 2026
Thumb-Sized Liquid Metal System for Robust Dynamic Electrocardiography Monitoring Against Motion Artifacts

Thumb-Sized Liquid Metal System for Robust Dynamic Electrocardiography Monitoring Against Motion Artifacts

Dynamic electrocardiography (ECG) monitoring during physical activity remains compromised by motion artifacts that corrupt signal fidelity, particularly with conventional gel electrodes whose impedance rises sharply under deformation. This work presents a thumb-sized liquid metal system integrating gallium-based epidermal electrodes with a self-adhesive elastomeric matrix to sustain robust ECG acquisition against motion. The electrodes exploit the fluidic compliance of eutectic gallium–indium to maintain continuous skin contact, while the adhesive formulation ensures stable interfacial coupling without additional fixation. The system achieves low motion artifact levels, preserving waveform morphology and R-peak detectability during ambulation. The compact form factor enables unobtrusive wearability, and the materials architecture addresses the trade-off between adhesion and conformability that limits existing dry electrodes. The study establishes a materials and device pathway for clinical-grade dynamic ECG in ambulatory and point-of-care settings, with implications for continuous cardiac monitoring where patient movement is unavoidable.

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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
Thermoelectric-based all-day solar thermal management

Thermoelectric-based all-day solar thermal management

Passive radiative thermal management is reframed as a device-level engineering problem for thermoelectric generators (TEGs) rather than a spectral-material optimization exercise. The surface temperature difference (ΔT) generated by photothermal (PT) absorbers and passive daytime radiative cooling (PDRC) emitters is not equivalent to the effective junction ΔT that drives carrier transport under load; parasitic heat leakage, contact thermal/electrical resistance at electrodes and interfaces, and nonuniform heat spreading systematically degrade the usable gradient. Spectral selectivity sets the upper bound of attainable ΔT, while module architecture, interfacial resistance, and heat-transfer path matching determine whether that bound is preserved as continuous electrical output. The Perspective identifies a critical metrology gap: most reports cite surface ΔT or peak open-circuit voltage without reporting the ΔT-transfer ratio under load, obscuring where thermal losses occur. Because both open-circuit voltage and internal electrical resistance vary with ΔT, external load must be dynamically matched across day-night and weather cycles; night-time reversal of heat-flow direction through the PDRC/PT stack necessitates DC polarity-conversion circuitry, and compact energy storage must buffer intermittent output. The authors argue that fill-factor reduction can preserve junction ΔT by raising thermal resistance but simultaneously increases electrical resistance and suppresses current. Credible assessment criteria are proposed: outdoor 24 h energy density, load-matched power, day-night continuity, and cycle-to-cycle repeatability, rather than peak voltage alone. Near-term deployment targets building-envelope sensors, structural-health monitors, wearables, and distributed IoT nodes where wiring or battery replacement dominates lifetime cost.

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Research PaperYear: 2026
Precision design of asymmetric cobalt single-atom catalysts for high-performance zinc-air batteries

Precision design of asymmetric cobalt single-atom catalysts for high-performance zinc-air batteries

The commercial viability of zinc-air batteries (ZABs) is constrained by the sluggish kinetics of the oxygen reduction reaction (ORR), which necessitates robust, cost-effective catalysts. While cobalt-based single-atom catalysts (Co SACs) exhibit superior selectivity and stability relative to Fe-N-C counterparts, their intrinsic ORR activity remains limited by scaling relations among intermediates. This study alleviates these constraints by precisely engineering the coordination symmetry of Co SACs. Through a mild annealing strategy, boron was incorporated into the first and second coordination shells of Co centers, creating an asymmetric Co-N3B-O local environment. The first-shell B/O coordination modulates the electronic structure of the Co center, while hydrogen bonding between *OOH and the coordinated O atom stabilizes the key intermediate, synergistically enhancing ORR activity. The optimized Co-BCN-950 catalyst delivers a peak power density of 216 mW cm-2 in ZABs, a 43% enhancement over commercial Pt/C (151 mW cm-2), alongside an open-circuit voltage of 1.43 V and a specific capacity of 790 mAh g-1. These findings establish a paradigm for tailoring the local coordination of SACs, enabling next-generation high-stability energy storage systems.

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Research PaperYear: 2026
Medium Entropy Tuning Improved Multiple Electron Redox in Polyanion Cathode for High-Rate Sodium-Ion Battery

Medium Entropy Tuning Improved Multiple Electron Redox in Polyanion Cathode for High-Rate Sodium-Ion Battery

Sodium vanadium phosphate (Na3V2(PO4)3, NVP) with NASICON structure is a promising cathode for sodium-ion batteries but suffers from low electronic conductivity and a high energy barrier for the V4+/V5+ redox couple, limiting practical energy density. A medium-entropy tuning strategy yields the multi-element substituted Na3.2V1.5Cr0.1Fe0.1Mn0.1Ni0.1Ti0.1(PO4)3 (ME-NVP). Entropy modulation tailors the microscopic electronic structure, enabling reversible V4+/V5+ redox at 4.0 V. Analyses reveal a synergistic diffusion mechanism that accelerates Na+ transport and enhances multiple-electron redox kinetics. Ex-situ X-ray diffraction confirms highly reversible structural evolution during cycling. The ME-NVP cathode delivers 116.8 mAh g-1 at 0.1C and retains 83.9% of initial capacity after 1000 cycles at 20C, with excellent performance from -12 to 50 °C. This work demonstrates that configurational entropy regulation unlocks high-energy polyanion cathodes for advanced sodium-ion batteries.

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Research PaperYear: 2026
Zero-Dimensional Hybrid Zinc Halides with Bright Self-Trapped Exciton Emission for Switchable Encryption and Decryption

Zero-Dimensional Hybrid Zinc Halides with Bright Self-Trapped Exciton Emission for Switchable Encryption and Decryption

Zero-dimensional (0D) hybrid metal halides are promising for optoelectronic displays, bioimaging, and anti-counterfeiting due to strong exciton localization and self-trapped exciton (STE) emission. However, low-toxicity, biocompatible zinc halides with blue emission remain scarce, hindered by structural isolation of [ZnBr4]2− tetrahedra, electron-phonon coupling, lattice distortion, and nonradiative relaxation. Here, we synthesize MPAZnBr4 (MPA = N-(3-aminopropyl) morpholine), a 0D zinc bromide halide. Single-crystal X-ray diffraction reveals a monoclinic P21/c space group with a = 6.65190 Å, b = 16.11210 Å, c = 13.79640 Å, β = 94.5700°, Z = 4, and a calculated density of 2.394 g/cm3. The isolated [ZnBr4]2− tetrahedra are hydrogen-bonded to MPA cations, with the shortest Br···Br contact of 4.76 Å indicating weak inter-cluster electronic coupling. Upon photoexcitation, MPAZnBr4 exhibits bright blue emission centered at 450 nm with a full width at half maximum of 135 nm. Wavelength-dependent emission mapping confirms a single radiative pathway, while temperature-dependent photoluminescence identifies triplet STE emission with a thermal quenching activation energy of 55 meV. The extensive hydrogen-bonding network imparts remarkable structural stability, showing negligible photoluminescence decay under prolonged excitation or storage. As a proof-of-concept, we demonstrate switchable and rewritable information encryption and decryption, enabling complex luminescent patterns. These findings provide a strategy for constructing highly stable, low-toxicity blue-emissive Zn-based 0D metal halides for advanced photonic and information-security applications.

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Research PaperYear: 2026
Simultaneous Modulation of Interfacial Dipole and Film Kinetics via Self-Assembled Monolayers for Low-Energy-Loss Organic Photovoltaics

Simultaneous Modulation of Interfacial Dipole and Film Kinetics via Self-Assembled Monolayers for Low-Energy-Loss Organic Photovoltaics

Self-assembled monolayers (SAMs) enable precise tuning of the ITO/active layer interfacial dipole, yet their impact on the crystallization kinetics of the overlying active layer remains poorly understood, limiting their potential in high-efficiency organic solar cells. This study introduces THPC, a self-assembling material with an extended carbazole core and heteroatom substitution, as a hole transport layer (HTL). Unlike the hydrophilic PEDOT:PSS, THPC exhibits low surface energy, providing a favorable template that extends the film formation kinetics of the PM6:L8-BO-X blend by nearly 1.4 times, mitigating the explosive nucleation prevalent in PM6-based active layers. This promotes a highly ordered fibrous morphology and enhances vertical phase separation. The deep work function of THPC (5.32 eV) increases the built-in potential, reduces interfacial trap density, and facilitates charge extraction. Consequently, non-radiative recombination loss decreases from 0.243 eV to 0.227 eV, and the open-circuit voltage rises from 0.866 V to 0.883 V, yielding a power conversion efficiency (PCE) of 20.19%, outperforming the PEDOT:PSS control (18.67%). This finding is confirmed across multiple Y-series acceptors, all approaching 20% PCE. Notably, the D18:L8-BO system achieves a PCE of 20.55%, demonstrating broad applicability.

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Research PaperYear: 2026
Lewis Acid and Hydroxyl Enabled PEO Electrolytes for Solid-State Lithium Metal Batteries

Lewis Acid and Hydroxyl Enabled PEO Electrolytes for Solid-State Lithium Metal Batteries

Poly(ethylene oxide) (PEO)-based solid polymer electrolytes are leading candidates for solid-state lithium metal batteries due to their flexibility, processability, and interfacial compliance. However, the strong crystallization tendency of PEO and limited lithium salt dissociation result in low ionic conductivity and low Li+ transference number, exacerbating concentration polarization and interfacial instability. Introducing metal-organic framework (MOF) fillers into PEO matrices has emerged as an effective route to regulate polymer-chain packing and promote salt dissociation via Lewis acid-base interactions. Yet, most studies focus on cubic ZIF-8, whose saturated Zn coordination environment limits intrinsic Lewis acidity and restricts its ability to immobilize TFSI- anions. Simultaneously, simple physical blending often leaves discontinuous interfacial transport regions in composite electrolytes, so improved salt dissociation does not automatically translate into fast Li+ transport. Here we report a PEO-based composite polymer electrolyte, denoted as PZS, that couples monoclinic ZIF-8 (M-ZIF-8) nanosheets with a thin SiO2 layer. The design combines two complementary functions: the under-coordinated Zn sites in M-ZIF-8 provide strong Lewis acid centers to adsorb TFSI- and promote LiTFSI dissociation, while the hydroxyl-rich SiO2 shell improves compatibility with the PEO matrix and helps construct continuous interfacial Li+ transport pathways. Benefiting from this synergy, the optimized PZS electrolyte delivers an ionic conductivity of 8.3 × 10-4 S cm-1 and a Li+ transference number of 0.57 at 60 ℃, together with an electrochemical stability window of 5.2 V. Li||Li symmetric cells remain stable for over 1200 h at 0.1 mA cm-2, and LFP||Li full cells retain 80% of their capacity after 400 cycles at 0.5 C.

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Research PaperYear: 2026
Nonlinear optical response and broadband self-powered polarization-sensitive photoresponse in low-symmetric TeSe2

Nonlinear optical response and broadband self-powered polarization-sensitive photoresponse in low-symmetric TeSe2

Breaking intrinsic structural symmetry is a fundamental prerequisite for pronounced nonlinear optical responses. Low-symmetry semiconductors with inherent anisotropy enable self-powered optoelectronic conversion and polarization-sensitive functionalities. This work reports the synthesis of low-dimensional van der Waals chain TeSe2 crystals with intrinsic inversion and C3 symmetry breaking. Angle-resolved polarized Raman spectroscopy and second-harmonic generation measurements confirm crystalline anisotropy and nonlinear optical performance. Electrical transport studies reveal p-type conduction with a room-temperature field-effect mobility of 122 cm2 V-1 s-1. The TeSe2 photodetector achieves self-powered detection and linearly polarized light detection across 405–1064 nm, with a photoresponsivity of 77.3 mA/W at 532 nm. The linear photogalvanic effect response is effectively modulated by gate voltage. Density functional theory calculations attribute p-type doping to Te and Se vacancies, while the nonlinear optical origin is linked to strong Berry curvature. Applications in polarization encoding communication and polarization imaging are demonstrated, indicating potential for low-energy-consuming, highly sensitive, on-chip integrated linear polarized photodetectors.

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Research PaperYear: 2026
Recent Advances in Electrically Actuated Functional Materials for Microrobot Locomotion

Recent Advances in Electrically Actuated Functional Materials for Microrobot Locomotion

Electrically actuated microrobots, typically defined as devices under 5 cm in length and 5 g in mass, offer distinct operational advantages over thermally, magnetically, or optically driven counterparts, particularly at the centimeter scale where external field-generation hardware imposes prohibitive cost and redundancy. This review systematically examines the intrinsic coupling mechanisms between the electromechanical performance parameters of functional materials and the resulting locomotion modes of microrobots. The central premise is that material-level electromechanical properties—actuation strain, blocking force, energy density, and drive voltage—directly govern critical system-level capabilities including obstacle-crossing ability and energy efficiency. The authors analyze how distinct material classes, such as dielectric elastomers, piezoelectric ceramics, and shape-memory alloys, map to specific locomotion modalities, thereby delineating the current performance boundaries of the field. The review identifies that power supply and control strategy remain the two dominant bottlenecks limiting autonomous operation and long-duration mission execution. By establishing a direct correlation between material selection and locomotion performance, this work provides a structured framework for researchers to set research directions and performance targets. The analysis concludes with a summary of challenges and future trends, emphasizing the need for materials that simultaneously satisfy low drive voltage, high strain, and high power density requirements for real-world deployment in unstructured environments.

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Research PaperYear: 2026
Iron-Induced Bidirectional Catalytic Effects for Sulfur Redox Reactions in Lithium–Sulfur Batteries

Iron-Induced Bidirectional Catalytic Effects for Sulfur Redox Reactions in Lithium–Sulfur Batteries

Electrocatalysts in lithium–sulfur (Li–S) batteries accelerate sulfur species redox reactions and restrict polysulfide shuttling, yet ideal electrocatalysts with remarkable bidirectional catalytic effects remain scarce. This work utilizes iron (Fe) to trigger bidirectional catalytic effects in a cobalt (Co) electrocatalyst, generating a metal alloy-based heterostructure of Co-Co7Fe3 dispersed homogeneously on carbon sheets (Co-Co7Fe3/CS). Electrochemical tests and in situ X-ray diffraction disclose significantly enhanced bilateral catalytic activity of Co-Co7Fe3 compared to bare Co, confirmed by self-discharge measurements. Post-cycling investigation validates protection of the Li metal anode from sulfur species corrosion. The Co-Co7Fe3/CS-modified coin cells deliver an exceptional rate capability of 603 mAh g–1 at 5.0 C and steady long-life cycling for 500 cycles at 1.0 and 2.0 C. Under high sulfur loadings and lean electrolyte conditions, an impressive areal capacity with stable cycling is realized. This work provides valuable insights for designing metal alloy-based heterostructures as advanced electrocatalysts in Li–S batteries.

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Research PaperYear: 2026
Macrocycle-Based Solid-State Lithium Electrolytes: Supramolecular Strategies and Ion-Transport Regulation

Macrocycle-Based Solid-State Lithium Electrolytes: Supramolecular Strategies and Ion-Transport Regulation

The rapid demand for high-energy-density lithium batteries necessitates advanced solid-state electrolytes (SSEs) to overcome the safety and performance limitations of conventional liquid counterparts. Macrocyclic compounds, with their well-defined cavities, programmable binding sites, and tunable self-assembly, have emerged as powerful molecular regulators for designing next-generation SSEs. This review examines recent advancements in macrocyclic compound-based SSEs by categorizing their functions into four fundamental supramolecular regulation paradigms: cation-centered regulation (e.g., crown ethers), anion-centered regulation (e.g., calixarenes and calixpyrroles), channel-dominated transport (e.g., cyclodextrins), and hybrid regulation (e.g., cucurbiturils). We elucidate how these macrocycles precisely control ion coordination, modulate migration dynamics, and reshape interfacial chemistry, leading to enhanced ionic conductivity, improved Li+ transference numbers, suppressed lithium dendrite growth, and superior interfacial stability. While each paradigm offers distinct advantages, the most promising SSEs often leverage synergistic combinations of these strategies. Finally, we highlight the remaining challenges, including synthetic complexity and multi-objective performance trade-offs, and propose future research directions for developing highly efficient and durable macrocycle-based solid-state lithium batteries.

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Research PaperYear: 2026
Stabilizing High-Entropy Substrates and Tailoring Interfacial Water: High-Valent Pt Single Atoms Drive Durable Propylene Epoxidation

Stabilizing High-Entropy Substrates and Tailoring Interfacial Water: High-Valent Pt Single Atoms Drive Durable Propylene Epoxidation

Electrochemical propylene epoxidation offers a sustainable route to propylene oxide (PO), but achieving high selectivity and stability under industrial current densities remains challenging. Herein, we report a high entropy amorphous CoFeNiCrMnBOx borate loaded with high valence Pt single atoms catalyst (a-Pt-HEBO) for stable bromine radical-mediated propylene epoxidation reaction (BrPOR). The high-entropy amorphous structure reshapes the interfacial hydrogen-bonding network and enriches free water, substantially lowering the energy barrier for water dissociation. Meanwhile, the strong electronic interactions between the coordinatively unsaturated, high-valence single Pt atoms and the substrate effectively prevent transition metal dissolution at high anodic potentials. The catalyst achieved 82.1% Faraday efficiency of PO at an industrial grade current density of 100 mA cm-2, and demonstrated excellent industrial application stability in up to 500 h of continuous test and within a scaled-up electrolyzer (4 × 4 cm2). This work provides a design for high-entropy catalysts in halogen-mediated electrosynthesis and a viable pathway toward carbon-neutral PO production.

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Research PaperYear: 2026
Narrow-Bandgap Acceptors with Low Energetic Disorder Achieve over 21% Efficiency in Organic Solar Cells

Narrow-Bandgap Acceptors with Low Energetic Disorder Achieve over 21% Efficiency in Organic Solar Cells

The referenced literature comprises five peer-reviewed studies published between 2025 and 2026 in Nature Materials, Journal of the American Chemical Society, Nature Communications, and Science China Materials. These works collectively address the persistent trade-off between open-circuit voltage (Voc) and short-circuit current density (Jsc) in organic photovoltaics (OPVs). Tao et al. (Nat Mater, 2026) demonstrate that narrow-bandgap nonfullerene acceptors engineered to exhibit low energetic disorder achieve power conversion efficiencies (PCEs) exceeding 21%, primarily by suppressing non-radiative recombination losses. Westbrook et al. (JACS, 2025) establish that solid-state packing motifs govern exciton delocalization and photophysics in nonfullerene acceptors, providing a structural handle for reducing energetic disorder. Jiang et al. (Nat Commun, 2025) show that photoluminescent delocalized excitons in donor polymers facilitate efficient charge generation, linking exciton coherence to device performance. Zhang et al. (Nat Commun, 2026) employ synergistic steric hindrance and chlorination to realize binary OSCs with low energy loss, achieving high Voc without sacrificing photocurrent. The cumulative findings indicate that molecular design strategies targeting low energetic disorder and controlled solid-state packing can overcome the longstanding efficiency ceiling of ~20% in OPVs. These results have direct implications for the commercial viability of solution-processed, lightweight, and flexible solar cells, though scalability and long-term stability remain to be validated under industrial manufacturing conditions.

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Research PaperYear: 2026

Water-Mediated Highly Reversible Mg-O2 Batteries

Magnesium-oxygen (Mg-O2) batteries offer high theoretical energy density and low-cost earth-abundant magnesium, yet practical deployment has been impeded by poor cycling stability and low energy efficiency, primarily due to the sluggish decomposition of conventional MgOx discharge products. Here we demonstrate that trace water in the electrolyte redirects the cathodic reaction to form chemically reactive Mg2(OH)3Cl·4H2O as the main discharge product, enabling a new reversible pathway: 8Mg2+ + 4Cl- + 3O2 + 22H2O ⇋ 4Mg2(OH)3Cl·4H2O. This water-mediated chemistry significantly enhances redox reversibility compared with the MgOx route. The resulting Mg-O2 battery delivers over 324 stable cycles at 1000 mA·g-1 with a capacity of 500 mAh·g-1 and an energy efficiency of 92%, surpassing all previously reported Mg-O2 systems. The electrolyte comprises 0.25 M magnesium bis(trifluoromethanesulfonyl)imide (Mg(TFSI)2) and 0.5 M magnesium chloride (MgCl2) in ethylene glycol dimethyl ether (DME) with a trace amount of water. These findings establish a general strategy for reversible Mg-O2 electrochemistry and provide a new design paradigm for practical magnesium-based energy storage.

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Research PaperYear: 2026
Electronic Structure Tailoring of COFs Photocatalysts via Triazine Moieties for Efficient H2O2 Generation and Water Decontamination

Electronic Structure Tailoring of COFs Photocatalysts via Triazine Moieties for Efficient H2O2 Generation and Water Decontamination

Developing efficient photocatalysts for hydrogen peroxide (H2O2) synthesis is vital for sustainable chemistry, yet optimizing the electronic structure of triazine-based covalent organic frameworks (COFs) through precise spatial engineering remains a challenge. In this work, we constructed four model COFs to systematically decode how the spatial arrangement and incorporation level of triazine moieties regulate the electronic structures and H2O2 production efficiency. Combined experimental and theoretical analyses revealed that FB-AT achieved an optimal donor-acceptor architecture via rational spatial arrangement of triazine and benzene moieties. This configuration established an intramolecular potential gradient, which not only promoted charge separation by suppressing the exciton binding energy but also enriched the electron density at triazine sites. These electron-rich active centers significantly facilitated the oxygen reduction reaction by lowering the thermodynamic energy barrier for *OOH intermediate formation. Consequently, FB-AT exhibited a remarkable H2O2 production rate of 11055 μmol g-1 h-1 in pure water, along with a superior solar-to-chemical conversion efficiency of 1.16%. Additionally, FB-AT enabled complete degradation of phenol, tetracycline, and rhodamine B within 5–15 min of visible light irradiation. This work provides crucial guidance for the rational design of advanced COF photocatalysts for sustainable H2O2 production and water decontamination.

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Research PaperYear: 2026
Hierarchical ionic networks in polymer electrolyte boost high-voltage solid-state Li batteries with stable interfaces and long cycling

Hierarchical ionic networks in polymer electrolyte boost high-voltage solid-state Li batteries with stable interfaces and long cycling

Solid-state lithium metal batteries (SLMBs) demand quasi-solid polymer electrolytes (QSSPEs) that simultaneously deliver high ionic conductivity, interfacial stability, and oxidative resistance. This study reports a QSSPE membrane (MP46) formulated with MG30:LiTFSI:succinonitrile at a 10:4:6 weight ratio, exhibiting a wide electrochemical window of 5.1 V. Complementary infrared spectroscopy, small-angle X-ray scattering, and electron microscopy reveal a hierarchical ionic conductive network consisting of sphere-like nanostructures embedded within microphase-segregated architectures. This morphology enhances lithium-ion transport while preserving mechanical integrity. The strong interfacial adhesion between MP46 and lithium metal enables stable lithium plating and stripping for over 800 h at 0.2 mA·cm–2, effectively mitigating dendrite formation. When paired with LiFePO4 and LiCoO2 cathodes, MP46 sustains prolonged cycling, retaining 80.1% capacity after 1400 cycles at 2 C and 92.1% after 200 cycles at 4.5 V, respectively. Pouch-type cells further demonstrate mechanical flexibility and operational safety under deformation. These results establish MP46 as a viable candidate for stable high-energy-density SLMBs, offering fundamental insights into the design of next-generation polymer electrolytes.

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Research PaperYear: 2026
Electrically Controlled Multi-State Memory Magnetic Tunnel Junctions Based on Multiferroic Tunneling Barriers

Electrically Controlled Multi-State Memory Magnetic Tunnel Junctions Based on Multiferroic Tunneling Barriers

Magnetic tunnel junctions (MTJs) with multiferroic tunneling barriers offer a pathway to fully electrically controlled multi-state memory, addressing the high energy costs and scalability limits of magnetically controlled counterparts. In this work, we propose a theoretical design achieving four or ten distinct resistance states via electrical control, with a giant tunneling magnetoresistance (TMR) ratio of 1.1×10^4% (11000%). This value surpasses all previously reported MTJs, including experimental systems such as CoFeB/MgO/CoFeB (TMR 65%, 4 states) and theoretical systems like Ga2O3/MgO/Ga2O3 (TMR 1120%, 2 states). The multiferroic barrier enables simultaneous control of ferroelectric and magnetic order parameters, allowing reversible switching between multiple resistance levels without external magnetic fields. Our first-principles calculations reveal that the high TMR arises from spin-dependent tunneling through the barrier, modulated by the ferroelectric polarization direction and magnetization configuration. The device operates with low write energy and exhibits non-volatile retention, making it suitable for high-density storage and in-memory computing. This work establishes a new benchmark for electrically controlled MTJs and provides a practical route to overcome the limitations of current spintronic memory technologies.

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Research PaperYear: 2026
Orchestrating Band Structures via Synergistic B and S Doping to Construct S-scheme g-C3N4 Homojunctions for Boosted Photocatalytic H2 Production

Orchestrating Band Structures via Synergistic B and S Doping to Construct S-scheme g-C3N4 Homojunctions for Boosted Photocatalytic H2 Production

A dual-doping strategy incorporating boron (B) and sulfur (S) into graphitic carbon nitride (g-C3N4) was employed to engineer band structures and construct an S-scheme homojunction (BSCN) for enhanced photocatalytic hydrogen (H2) evolution. The BSCN catalyst exhibited an interwoven architecture of porous nanotubes and nanosheets, providing a large specific surface area and abundant active sites. In situ X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations revealed an S-scheme charge transfer mechanism at the BCN/SCN interface, driven by a built-in electric field that facilitates efficient spatial separation of photogenerated charge carriers. Photoelectrochemical measurements confirmed improved light harvesting and charge separation. DFT simulations indicated near-thermoneutral hydrogen adsorption free energy (ΔGH* = 0.12 eV) at S-doped sites, favorable for hydrogen evolution reaction (HER) kinetics. The optimized BSCN achieved an exceptional H2 evolution rate of 14.409 mmol g−1 h−1, approximately 75-fold and 3.4-fold higher than pristine BCN and SCN, respectively. This work establishes a rational doping-mediated approach for designing high-efficiency g-C3N4 homojunctions and provides mechanistic insights into S-scheme charge transfer for solar-driven H2 production.

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Research PaperYear: 2026
High-Performance All-Solid-State Artificial Muscles Enabled by Double-Network Hydrogel Electrolytes

High-Performance All-Solid-State Artificial Muscles Enabled by Double-Network Hydrogel Electrolytes

Conventional electrochemical artificial muscles rely on liquid electrolytes, which suffer from poor encapsulation processability, high leakage risks, and inadequate biocompatibility, limiting their application in bionic medicine, wearable exoskeletons, and humanoid robots. To address these bottlenecks, we fabricated a polyvinyl alcohol-polyacrylic acid (PVA-PAA) double-network hydrogel electrolyte and integrated it with twisted carbon nanotube (CNT) yarns via ultraviolet curing, constructing an all-solid-state artificial muscle unit. The unit maintained structural integrity and actuation performance after mechanical deformation treatments such as weaving and knotting. Experimentally, it achieved a maximum contractile stroke of 16% at −1 to 1.8 V and generated an isometric force of approximately 500 mN at −1 to 2 V. The solid-state artificial muscles exhibited excellent mechanical properties, compact size, and high flexibility, offering new opportunities for applications in bionic medical devices and intelligent robots.

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Research PaperYear: 2026
Recent Advancements and Outlook of Electrocoagulation for Wastewater Treatment

Recent Advancements and Outlook of Electrocoagulation for Wastewater Treatment

Electrocoagulation (EC) has emerged as a promising electrochemical technology for wastewater treatment, offering distinct advantages over conventional chemical coagulation and membrane processes. This review systematically summarizes recent advancements in EC, focusing on the underlying mechanisms, key operating parameters, and diverse technical applications. The EC process involves three stages: electrolytic oxidation and in-situ coagulant formation, destabilization of contaminants, and floc formation. Unlike chemical coagulation, EC requires no external chemical additives, and process control is achieved by adjusting current density, voltage, or electrode materials, enabling adaptation to varying wastewater qualities. The review highlights the influence of dissolved organic matter (DOM) on EC efficiency, as clarified by Luo et al. (Water Research, 2025). Furthermore, it discusses reactor design innovations, including continuous-flow and cascade-type configurations, and the role of current waveforms in mitigating electrode passivation. The integration of EC with membrane bioreactors and forward osmosis is also examined, demonstrating enhanced treatment performance and fouling mitigation. Key challenges, such as energy consumption and electrode scaling, are addressed, along with future research directions. This comprehensive analysis provides a critical framework for optimizing EC systems and scaling them for industrial wastewater treatment, emphasizing the need for holistic reactor design and process integration to achieve sustainable water reuse.

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Frequently Asked Technical Questions (Solid-State Battery)

Q:What is China’s timeline for mass producing all-solid-state batteries?

Semi-solid batteries (360-400 Wh/kg) are already commercially deployed in Nio and IM Motors vehicles. Full all-solid-state batteries (500 Wh/kg) are slated for industrial pilot lines in 2026 and mass volume EV integration by 2027-2030.

Q:Why is China focusing heavily on sulfide-based solid electrolytes?

Sulfide electrolytes possess the highest room-temperature ionic conductivity (>10 mS/cm) and favorable mechanical deformability, allowing cold pressing and roll-to-roll integration into existing pouch cell gigafactories.

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