SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4245-4
The discrimination of volatile organic compounds (VOCs) at trace concentrations remains a critical challenge for environmental monitoring, industrial process control, and non-invasive disease diagnostics. Conventional electronic noses rely on sensor arrays comprising multiple chemically distinct receptors, which introduces fabrication complexity, calibration drift, and cross-sensitivity. Here, we demonstrate that a single-component Ti3C2Tx MXene (TM) sensor array, engineered through controlled surface chemistry and device architecture, generates independent and high-dimensional characteristics (IHC) sufficient for precise VOC pattern recognition. By exploiting the intrinsic heterogeneity of TM basal planes and edge sites, we achieve differential interaction motifs without expanding elemental composition. The array discriminates VOCs including acetone, ethanol, toluene, and hexane at concentrations down to 100 ppb with classification accuracy exceeding 95%. Principal component analysis reveals distinct clustering with cumulative variance of 92.3% captured by the first three principal components. The sensor exhibits a limit of detection of 50 ppb for acetone and response/recovery times of 12 s and 18 s, respectively. Long-term stability tests over 30 days show less than 5% signal degradation. This single-component strategy simplifies fabrication, reduces calibration overhead, and offers a scalable pathway for miniaturized, low-power VOC sensing platforms compatible with Internet of Things (IoT) deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4319-x
This erratum corrects an error in the Acknowledgments section of the original article 'Investigation on graphene growth by roll-to-roll chemical vapor deposition' published in Science China Materials, Vol. 65, Issue 4, page 1042, 2022. The authors regret that the funding number (No. (2021)105) for the Shenzhen Science and Technology Program was incorrectly used. The correct funding number is No. KQTD20200820113010022. The authors apologize for any inconvenience caused. This correction does not affect the scientific content, results, or conclusions of the original paper. The original research focused on the kinetics of graphene growth via roll-to-roll chemical vapor deposition (CVD), a scalable method for producing high-quality graphene films. The study addressed challenges in continuous manufacturing, such as uniformity, growth rate, and defect control, and provided insights into optimizing process parameters for industrial-scale production. The erratum ensures accurate attribution of funding sources, maintaining the integrity of the research record.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4246-5
Developing organic solar cells (OSCs) processable from green solvents without additives or post-treatments is essential for sustainable manufacturing, yet high power conversion efficiency (PCE) remains difficult due to limited morphology control. Herein, we develop a new electron-deficient building block, dithiazolo[4',5':3,4;5'',4'':5,6]benzo[1,2-d][1,2,3]triazole (DTzBT), which fuses benzo[d][1,2,3]triazole (BTA) with thiazole to leverage S/N-mediated non-covalent interactions, enhance planarity and lower the HOMO. To isolate side-chain effects, two DTzBT-based donors, namely PTzMe-F (N-methyl) and PTzEH-F (N-2-ethylhexyl), have been designed and synthesized. PTzMe-F exhibits poor solubility and miscibility with L8-BO, yielding 2.64% PCE (chloroform). PTzEH-F exhibits excellent processability and favorable morphology, delivering 17.61% PCE (chloroform) and 19.17% as-cast from toluene without any additive or post-treatments. In addition, the ternary LbL device based on PTzEH-F/L8-BO:PC71BM achieved an impressive efficiency of 20.27%. Comprehensive characterization indicates that 2-ethylhexyl side chains afford optimal solubility while preserving strong intermolecular interactions and favorable phase separation. DTzBT mitigates BTA’s HOMO-raising tendency via electron-withdrawing thiazole fusion, reconciling aggregation tunability with energy-level control. These results show that precise backbone and side-chain co-design enables green-solvent, additive-free processing for high-performance OSCs, advancing sustainable photovoltaic manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4209-3
Solar interfacial evaporation and photocatalysis exhibit intrinsic complementarity in energy utilization pathways and reaction mechanisms. Integrating photocatalysis into interfacial evaporation systems enables a synergistic platform for efficient evaporation and pollutant removal. In this study, a defect-engineering strategy is developed for UiO-66 by covalently anchoring five carboxyl-containing organic dyes into its framework, where steric hindrance and ligand substitution synergistically induce abundant structural defects. This approach yields a series of defect-rich UiO-66 materials with tunable dye loading. Among them, the dye-sensitized UiO-66@dye-2 system demonstrates optimal light absorption capacity and vacancy defects. The dyes act as sensitizers, broadening the light absorption range and accelerating water evaporation, while the defect-inducing dyes introduce abundant trap sites, enabling rapid charge transfer and efficient spatial charge separation. Under 1-sun irradiation, the system achieves an outstanding water evaporation rate with a high solar-to-vapor conversion efficiency of 97.8%, along with excellent photocatalytic performance, achieving 95.4% degradation of phenol pollutants. Notably, it maintains stable degradation performance across highly acidic and alkaline environments, ensuring reliability for long-term operations in complex conditions. This work provides a molecular-level strategy for constructing defect-rich UiO-66 derivatives and offers insights for designing next-generation materials for integrated photothermal-photocatalytic environmental remediation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4258-0
High-entropy noble-metal-based catalysts (HENCs) have emerged as a frontier in electrocatalysis, leveraging the synergistic effects of high-entropy alloys and noble metals to achieve exceptional atomic utilization, tunable electronic structures, and vast compositional space. Their anisotropic architectures confer superior dissolution resistance, rapid electron/mass transfer, and abundant active sites. This review systematically categorizes advanced structural regulations—grain boundary engineering, single-atom alloys, intermetallic compounds, amorphous structures, and core@shell configurations—and evaluates their impact on electrocatalytic performance. By modulating surface electronic states and lattice strain, these strategies optimize reaction kinetics and durability. Notable applications include oxygen reduction (ORR), oxygen evolution (OER), hydrogen evolution (HER), and CO2 reduction (CO2RR). Despite progress, challenges persist in scalable synthesis, mechanistic understanding, and long-term stability. This review underscores the potential of HENCs to bridge laboratory innovation and industrial deployment, providing a roadmap for future catalyst design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3698-5
The oxygen evolution reaction (OER) is a critical bottleneck in next-generation sustainable energy systems due to its sluggish kinetics. Developing cost-effective, high-efficiency electrocatalysts requires understanding the dynamic structural evolution at electrode-electrolyte interfaces under operating conditions. In situ techniques are invaluable for identifying active centers and monitoring key intermediates. This review comprehensively summarizes recent advances in cutting-edge in situ methods for characterizing OER electrocatalyst structure evolution. It provides a brief overview of active motifs and robust structures using multiple in situ correlative techniques, establishing essential structure-performance relationships and updating mechanistic understanding at atomic scale under realistic conditions. Key challenges and perspectives are highlighted to promote rational design of promising electrocatalysts for efficient oxygen-associated electrocatalysis and electrosynthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3761-7
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.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507041
This study investigated the cultivation of aerobic granular sludge (AGS) in a sequencing batch reactor (SBR) for the treatment of real textile dyeing wastewater, focusing on the influence of organic loading rate (OLR) on granulation and pollutant removal. After 60 days of cultivation, dense granules of approximately 1 mm diameter were formed, with extracellular polymeric substances (EPS) content of 92.22 mg·L−1, achieving COD and color removal efficiencies of 88.5% and 73.3%, respectively. OLR significantly regulated sludge characteristics: at an OLR of 3.0 kg·(m3·d)−1, the average granule size reached a maximum of 1.38 mm, EPS content peaked at 95.21 mg·g−1, and the highest COD and color removals were observed (92.73% and 86.35%, respectively). However, an excessive OLR of 5.0 kg·(m3·d)−1 led to sludge bulking and disintegration. Microbial community analysis revealed that Proteobacteria (44.06%–49.17%) and Bacteroidetes (27.49%–29.64%) were the dominant phyla, with their abundances significantly correlated with EPS protein secretion and pollutant removal efficiency. This study elucidates the mechanism by which OLR optimizes textile wastewater treatment through modulation of microbial community structure and EPS secretion, providing a theoretical basis and technical support for the practical application of AGS in textile dyeing wastewater treatment.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225225
The non-Newtonian rheological properties of plastic melts are critical for regulating plastic processing, molding, and recycling processes, ensuring processing stability and product performance. However, rheological data for commonly used plastics and their blends remain incomplete. This study combined experimental testing and theoretical modeling to investigate the rheological behaviors of four pure plastics—polypropylene (PP), polyethylene (PE), polystyrene (PS), and acrylonitrile-butadiene-styrene copolymer (ABS)—and three binary blend systems: PE/ABS, PP/ABS, and PS/ABS. Rheological tests were conducted using a rheometer over a shear rate range of 0.1–100 s⁻¹ and temperatures from 180°C to 250°C. Results showed that the flow behavior index n was less than 1 for all samples, and apparent viscosity decreased significantly with increasing shear rate, indicating clear shear-thinning behavior. The consistency coefficient K followed the Arrhenius relationship with temperature, and melt viscosity decreased as temperature increased. The study quantitatively characterized the relationship between the mass fraction m (0.5 < m ≤ 1) of the main component in binary blends and melt viscosity. Based on experimental data, a component correction term was introduced into the traditional power-law model to construct a constitutive equation that simultaneously describes the effects of shear rate, temperature, and component fraction on melt viscosity. The average relative error between model predictions and experimental values was only 5.90%. These rheological data and the modified constitutive equation provide important theoretical support and data reference for optimizing process parameters in waste plastic recycling and injection molding.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3750-6
SnSe is a promising thermoelectric material for medium-temperature applications due to its ultralow lattice thermal conductivity. However, the poor electrical conductivity of n-type polycrystalline SnSe significantly hinders its practical application. Here, we propose a dual-functional strategy employing InBr3 doping to synergistically enhance electrical transport while suppressing lattice thermal conductivity. For the first time, we demonstrate the successful construction of a Br-enriched conductive network within the SnSe matrix. The incorporation of In3+ and Br− introduces high-density charge carriers, while Br forms percolative conductive networks, resulting in a remarkable enhancement of carrier mobility to ~20.64 cm2 V−1 s−1. Simultaneously, the lattice thermal conductivity is substantially reduced to ~0.25 W m−1 K−1 through the formation of multi-scale defects, including dislocations and Br-rich nanowires, which effectively enhance phonon scattering. As a result, we achieve a peak figure of merit of ZT ~1.41 at 823 K, with an average figure of merit of ~0.42 over the temperature range of 323–823 K. This work provides a universal paradigm for decoupling electron-phonon interactions in thermoelectric materials, offering new insights for the optimization of thermoelectric performance.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510041
This study presents a full-scale engineering practice of retrofitting an idle upflow anaerobic sludge blanket (UASB) reactor into an aerobic granular sludge (AGS) system for treating low-strength municipal wastewater. The design capacity was 20,000 m3/d (maximum 24,000 m3/d), achieving separate treatment of industrial and domestic wastewater to reduce operational costs. Systematic analysis covered hydraulic capacity enhancement, effluent quality, pollutant removal efficiencies, sludge granulation progress, and operational costs. Results showed rapid start-up: the system reached 75% of design capacity by day 10 and 90% by day 26. During a 4-month operation, average removal efficiencies for COD, NH4+-N, TN, and SS were 83.2%, 97.0%, 75.9%, and 94.4%, respectively, even under low influent BOD5/TN ratios (typically below 4). Granulation progressed quickly: by day 44, average particle size was 2.6 times that of the inoculum and over 4 times that of flocs, with granules (>200 μm) accounting for 17.3%; by day 110, these values increased to 3.2 times and 5 times, with granule proportion reaching 33.4%. Compared to the previous year (June–August), the AGS process reduced electricity consumption, chemical consumption, and sludge production by 77.3%, 25.4%, and 30.4%, respectively, while saving 65.6% of footprint. This ten-thousand-ton case provides a practical basis for AGS technology application in China.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3862-x
Hexagonal boron nitride (hBN) is indispensable for next-generation electronics and quantum technologies, yet controlled synthesis of isotopically engineered hBN with macroscopic scalability and atomic-level precision remains challenging. Here, we present a plasma-enhanced chemical vapor deposition (PECVD) method using elemental boron (B) and nitrogen (N) precursors to achieve wafer-scale growth and precise isotopic control of hBN films. High-quality hBN films are synthesized on Cu substrates via optimized B evaporation and N2 plasma activation. The growth mechanism involves an oxygen-mediated pathway for B transport and a layer-by-layer (Frank-van der Merwe) mode for multilayer formation. By employing isotopically enriched B powders (10B and 11B) and N2 gases (14N2 and 15N2), we demonstrate tunable isotopic compositions with phonon mode shifts quantitatively matching harmonic oscillator predictions. Furthermore, we realize unprecedented in-plane h10BN-h11BN heterostructures through dynamic B source switching during growth. This PECVD strategy establishes a transformative synthesis platform merging industrial-scale production capacity with atomic-scale isotopic precision, enabling new opportunities to engineer thermal transport, optical response, and quantum coherence in two-dimensional materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510072
Porous structures are widely used in hydraulic and pneumatic systems for flow rectification and throttling, reducing velocity, regulating pressure, and improving flow stability. Numerical simulation is a common approach to study such flows, yet the lack of standardized parameter settings often leads to user-dependent errors. This study, based on the CFD software Fluent, systematically analyzes nine key parameters across three core stages: modeling, mesh generation, and solver settings. Under both quasi-2D and 3D configurations, the influence and underlying mechanisms of each parameter on simulation results are revealed, and a reference parameter-setting method is proposed. The method is validated against wind tunnel experiments, showing that the simulated average velocity reduction ratio γS deviates from experimental values by less than 6%, confirming its reliability and applicability. This work provides a basis for standardized parameter settings in numerical simulations of porous structures, enhancing consistency and predictive accuracy.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60615-3
Co-pyrolysis of oil-rich coal and biomass is a promising route to enhance oil and gas production, yet the underlying synergistic mechanisms remain poorly understood. This study investigates the effect of hydrothermal pretreatment (HTP) on the co-pyrolysis of Huangling coal (H) and enzymatic hydrolysis lignin (E). Raw and pretreated samples were characterized via proximate/ultimate analysis, SEM, ICP-OES, and 13C-NMR. Fixed-bed pyrolysis experiments were conducted to evaluate synergistic performance. Results show that HTP reduces oxygen content, develops pore structure, and increases concentrations of inorganic metal ions (Ca, K, Fe) in the aqueous phase. Structural modifications bring the carbon skeleton of E closer to that of H, with increased bridge carbon ratio and improved thermal stability, aligning pyrolysis temperature ranges. For the H/E blend (8:2) after 24 h HTP, tar yield increases by 80.52% compared to untreated blend, with significant rises in aliphatic compounds and monocyclic aromatic hydrocarbons. Gas yields of H2, CO, and CH4 increase by 5.47%, 10.98%, and 9.27%, respectively, while CO2 and pyrolysis water generation are inhibited (water yield decreases by 93.98%). Semi-coke pore structure becomes more developed. The enhanced synergistic effect is attributed to a multi-fold mechanism of 'component interaction-structural modification-catalytic cracking'. These findings provide theoretical support for developing technologies to improve co-pyrolysis of oil-rich coal and biomass, advancing low-carbon, high-quality utilization.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025040104
The oxidative transformation of 2,6-dichlorophenol (2,6-DCP) was investigated in three typical zonal soils: black soil, red soil, and brown soil. Results demonstrated that 2,6-DCP underwent oxidative coupling in all soils, yielding hydroxylated polychlorinated diphenyl ethers (OH-PCDEs) and hydroxylated polychlorinated biphenyls (OH-PCBs) as primary products. The highest oxidative efficiency occurred in black soil, with approximately 85.1% of 2,6-DCP transformed within three days. In contrast, red and brown soils exhibited lower efficiencies, indicating a strong dependence on soil properties. Thermodynamic analysis revealed that the oxidative coupling reaction is endothermic, with elevated temperatures favoring reaction progress. Furthermore, soil microorganisms and dissolved oxygen were identified as critical controlling factors, acting synergistically to drive the reaction. This study provides the first evidence of natural oxidative coupling of 2,6-DCP in soil, forming OH-PCDEs and OH-PCBs. These findings offer significant scientific insight into the environmental fate of halogenated phenolic pollutants in terrestrial systems.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202408057
Urban waterlogging, exacerbated by climate change and rapid urbanization, poses increasing risks, particularly in coastal low-lying areas with dense river networks. This study simulated waterlogging in the Shajing River drainage area of the Maozhou River basin, Shenzhen, using the SOBEK hydrodynamic model. Under a 5-year return period rainfall, 47 manholes overflowed and 31.29% of stormwater pipes operated at full capacity. Twelve waterlogging-prone points were identified: eight due to insufficient drainage capacity and five due to river backflow from low elevation. Two optimization schemes were compared: enlarging pipe diameters and implementing Low Impact Development (LID) measures. Pipe enlargement reduced overflowing manholes by 32 and full-flow pipe length by 20%, effectively decreasing surface ponding. LID measures reduced overflowing manholes by only 4 and full-flow pipe length by 1.5%, but decreased maximum flooding depth by nearly 1 m, alleviating drainage system burden. The study highlights the complex causes of coastal urban waterlogging, especially river backflow under tidal influence, and recommends considering sea-level rise and storm surge in drainage design. The findings provide valuable references for attributing waterlogging causes and planning drainage network upgrades in coastal cities.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4027-0
Microneedle (MN)-based transdermal delivery systems enhance skin permeability by creating microscale conduits through the stratum corneum, enabling controlled and sustained release of therapeutics. Nevertheless, conventional MN designs predominantly rely on passive diffusion, resulting in shallow drug penetration depth and limited spatial distribution range, which significantly restricts their therapeutic efficacy in complex biological environments. Emerging advancements have integrated gas therapy into MN platforms to overcome these limitations. The released therapeutic gases facilitate deeper drug penetration via propulsion and also exhibit inherent bioactivity, contributing to synergistic treatment outcomes. This review summarizes the mechanisms, design strategies, and applications of gas-releasing MN systems, while highlighting key scientific and translational challenges, including the precise regulation of gas release, the development of multi-gas synergistic systems, the extension to deep-tissue therapy, and the assurance of biosafety. Future directions emphasize the construction of intelligent, stimuli-responsive MNs, the integration of interdisciplinary technologies to enhance delivery depth, and the establishment of standardized, scalable manufacturing frameworks. Collectively, this work aims to advance gas-releasing MN technology toward precise, efficient, and controllable therapeutic applications, bridging the gap between laboratory research and clinical translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4065-6
Industrial-scale hydrogen production from seawater is a paramount goal for a sustainable energy future, yet it is severely hampered by the rapid deactivation of electrocatalysts under harsh operating conditions. Here, we introduce a robust self-supporting aerogel catalyst designed to address the two intertwined challenges of activity and stability in high-current-density seawater electrolysis. Our strategy involves creating strong metal-support interactions by anchoring ultrasmall platinum nanoparticles onto a porous N-doped carbon aerogel (Pt@N/CFP). Theoretical calculations reveal that this unique Pt-N interface serves a dual critical function: it not only lowers the kinetic barrier for water dissociation but also creates an electronic shield that effectively prevents chloride ion poisoning of the Pt active sites. When implemented as the cathode in a practical anion-exchange membrane (AEM) electrolyzer, the Pt@N/CFP catalyst demonstrates exceptional performance, achieving a low cell voltage of 1.688 V at an industrial-grade current density of 1000 mA cm−2 and maintaining outstanding stability for over 300 h. This work provides guidance for creating exceptionally durable catalysts capable of withstanding extreme electrochemical environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4004-3
The development of efficient and stable oxygen evolution reaction (OER) electrocatalysts is critical for clean energy technologies, yet conventional cobalt-based spinel catalysts often suffer from insufficient activity and structural instability under operating conditions. To address these challenges, this study proposes and constructs a cation-ordered spinel-like catalyst (HVI Metal-CoMoO4/NF). The unique crystalline framework induces significant Jahn-Teller distortion and pre-stabilizes a Co2+/Co3+ mixed-valence state at the cobalt active centers via asymmetric Co–O–Mo bridges, effectively optimizing bulk charge transport. Electrochemical tests demonstrate that its performance significantly surpasses that of benchmark materials, requiring only an overpotential of 307 mV to drive a current density of 100 mA cm−2 in 1.0 M KOH, with a Tafel slope of 63.13 mV dec−1, maintaining stable operation for over 320 h at high current density. Crucially, our structural and in situ characterization results clearly reveal a stable and well-crystallized reconstruction behavior from the surface into the bulk of the spinel-like pre-catalyst during the OER. This work fundamentally addresses the challenges of disordered reconstruction and unstable active phases in traditional spinel catalysts, providing a paradigm for regulating the dynamic evolution of electrocatalysts through precise structural design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4024-1
Sonodynamic therapy (SDT) faces limited efficacy due to robust antioxidant systems in tumors that scavenge reactive oxygen species (ROS). To overcome this, we developed a pH/ultrasound-responsive theranostic nanoplatform, Mn-CaCO3@NGQDs/PAA, via self-assembly of nitrogen-doped graphene quantum dots (NGQDs), Mn-doped CaCO3, and polyacrylic acid (PAA). This platform synergistically combines SDT with calcium overload. Under ultrasound irradiation, it generates abundant singlet oxygen (1O2), while the acidic tumor microenvironment triggers sustained Ca2+ release, inducing calcium overload. The combined effects amplify oxidative stress, suppressing tumor growth. Additionally, the nanoplatform exhibits dual-mode T1/T2-weighted magnetic resonance imaging (MRI) performance, enabling tumor localization. In vivo studies demonstrated significant tumor inhibition and apoptosis, with no notable toxicity. This integrated strategy maximizes therapeutic efficacy, offering a promising approach for enhanced tumor therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4136-y
All-perovskite tandem solar cells (TSCs) are poised to surpass the Shockley–Queisser limit of single-junction perovskite solar cells (PSCs) by integrating wide- and narrow-bandgap subcells to broaden spectral utilization. However, their performance remains constrained by interface charge transfer losses and non-radiative recombination in wide-bandgap subcells. Self-assembled monolayers (SAMs) serve as effective hole-selective contacts, yet conventional designs suffer from uncontrolled intermolecular interactions due to amphiphilic characteristics, leading to detrimental self-aggregation, suboptimal molecular packing, and weakened interfacial adhesion. In a recent breakthrough published in Nature Energy, Wang et al. introduced a rational molecular design that integrates amide units as dual hydrogen-bond donors and acceptors into a bicarbazole-based biphosphonic acid dimer (AOCzPA). This design suppresses self-aggregation via a twisted conformation of the C–C-linked carbazole dimer, enhancing steric hindrance and preventing π–π stacking. The amide groups establish an expansive, cooperative hydrogen-bonding network, forming intramolecular bonds, intermolecular connections, and strengthened bonds with hydroxylated transparent conductive oxides (TCO) via C=O···HO–In/Sn and N–H···O–In/Sn. This network impedes long-range crystalline order, creating an amorphous, homogeneous molecular distribution without nanovoids. Consequently, the energy band at the perovskite interface bends upward, narrowing the energy offset to 0.42 eV and aligning HOMO levels for barrier-free hole extraction. The strategy yields exceptional performance: 1.77 eV single-junction wide-bandgap PSCs achieve a PCE of 21.56%, V_OC of 1.35 V, and FF of 85.76%, indicating low voltage losses and suppressed non-radiative recombination. This work advances SAM design from monolayer assembly to networked interface engineering, enhancing mechanical and chemical robustness and minimizing hole-transport losses.