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Corrosion Resistance Mechanism of TaC-Coated Graphite in High-Temperature Silicon-Containing Steam Environments
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作者 Kui HAO Caixia HUO +7 位作者 Shuo YU Jianxin TU Le SUN Maolan YU Ruicheng BAI Fangzhou ZHANG Aijun LI Haoran LI 《中国材料进展》 北大核心 2026年第2期155-162,共8页
High-purity graphite is extensively utilized in the semiconductor industry.Enhancing its corrosion resistance is crucial for reducing the manufacturing costs of the third-generation semiconductors.In this study,a cont... High-purity graphite is extensively utilized in the semiconductor industry.Enhancing its corrosion resistance is crucial for reducing the manufacturing costs of the third-generation semiconductors.In this study,a continuous and dense TaC coating was fabricated on the surface of graphite using CVD method.The corrosion resistance and mechanism of the coating were investigated in a high-temperature steam environment.This environment involved temperatures exceeding 2200 K and the erosion of the coating by Si-containing mixed steam flows.The results indicated that the corrosion in the affected areas was primarily due to chemical reactions,characterized by the formation of pores and micro-cracks,whereas failure areas were dominated by mechanical delamination,which led to macroscopic defects.Moreover,the mixed high-temperature steam corrosion of the TaC coating showed preferential selectivity,resulting in a stepped corrosion morphology at the crystalline level.The surface roughness of the samples significantly increased after corrosion,from 0.36 to 5.28μm,although the surface composition remained largely unchanged.The TaC coating provides a certain level of protection to the graphite substrate,enhancing the service life of graphite components and demonstrating promising application potential. 展开更多
关键词 TaC coating CVD SiC Si-containing vapor CORROSION
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Facile Fabrication of Ceramic-resin Coatings on C/CA Composites for Oxidation Protection at Medium Temperatures
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作者 TIAN Hongwang LUO Longfei +4 位作者 HU Chenglong YAN Meng PANG Shengyang LI Jian TANG Sufang 《无机材料学报》 北大核心 2026年第3期401-408,I0008-I0011,共12页
Carbon fiber-reinforced carbon aerogel(C/CA)composites are one of the most promising candidates for applications requiring both thermal insulation and load bearing capabilities.The preparation of anti-oxidation coatin... Carbon fiber-reinforced carbon aerogel(C/CA)composites are one of the most promising candidates for applications requiring both thermal insulation and load bearing capabilities.The preparation of anti-oxidation coatings on C/CA to address its susceptibility to oxidation is a feasible approach to promote its application in oxidative environments.However,the currently reported coatings on C/CA mainly focus on improving the ablation performance and coating preparation process typically necessitating high-temperature heat treatment.This procedure can increase its thermal conductivity and reduce its thermal insulation ability.In this study,a series of ceramic-resin coatings were fabricated on C/CA through a simple slurry brushing-drying approach at room temperature.The effects of phenolic resin content on the coating structure,residual stress,thermal shock,and oxidation behaviors were investigated.Due to the adhesive properties and curing-induced shrinkage,the PR-7.5 coating(containing 7.5%(in mass)phenolic resin in the slurry)exhibits bonding strength close to fracture strength of the substrate and residual compressive stress of 0.853 GPa,which is beneficial for resisting thermal shock cracking.However,excessive resin content(PR-10.0 containing 10.0%(in mass)phenolic resin in the slurry)induces tensile stress due to uneven curing shrinkage,thereby leading to thermal shock cracking.Meanwhile,oxidation tests reveal significantly reduced weight losses for PR-7.5(17.46%at 800℃/100 min,8.15%at 1000℃/120 min,3.15%at 1200℃/120 min)versus uncoated C/CA’s 44.60%loss at 800℃/20 min.This work provides a brand-new and simple approach to improving the anti-oxidation performance of C/CA and expands its application in mild oxidative environments. 展开更多
关键词 C/CA composite coating OXIDATION residual stress interfacial bonding
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Effect of Substrate Micro-arc Oxidation Pretreatment on Microstructure and High-Temperature Oxidation Resistance of Si-Cr-Ti-Zr Coating on Ta12W Alloy
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作者 Yang Fan Chang Jianxiu +2 位作者 Wang Xin Li Hongzhan Yan Peng 《稀有金属材料与工程》 北大核心 2026年第1期92-104,共13页
To mitigate the impact of interdiffusion reactions between the silicide slurry and Ta12W alloy substrate during vacuum sintering process on the oxidation resistance of the silicide coating,a micro-arc oxidation pretre... To mitigate the impact of interdiffusion reactions between the silicide slurry and Ta12W alloy substrate during vacuum sintering process on the oxidation resistance of the silicide coating,a micro-arc oxidation pretreatment was employed to construct a Ta_(2)O_(5)ceramic layer on the Ta12W alloy surface.Subsequently,a slurry spraying-vacuum sintering method was used to prepare a Si-Cr-Ti-Zr coating on the pretreated substrate.Comparative studies were conducted on the microstructure,phase composition,and isothermal oxidation resistance(at 1600℃)of the as-prepared coatings with and without the micro-arc oxidation ceramic layer.The results show that the Ta_(2)O_(5)layer prepared at 400 V is more continuous and has smaller pores than that prepared at 350 V.After microarc oxidation pretreatment,the Si-Cr-Ti-Zr coating on Ta12W alloy consists of three distinct layers:an upper layer dominated by Ti_(5)Si_(3),Ta_(5)Si_(3),and ZrSi;a middle layer dominated by TaSi_(2);a coating/substrate interfacial reaction layer dominated by Ta_(5)Si_(3).Both the Si-Cr-Ti-Zr coatings with and without the Ta_(2)O_(5)ceramic layer do not fail after isothermal oxidation at 1600℃for 5 h.Notably,the addition of the Ta2O5 ceramic layer reduces the high-temperature oxidation rate of the coating. 展开更多
关键词 tantalum-tungsten alloy silicide coating micro-arc oxidation reaction formation mechanism high-temperature oxidation
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Microstructure and Thermal Properties of MoSi_(2)and Gd_(2)Zr_(2)O_(7)Composite Coatings on Mo-Re Alloy
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作者 Zhang Chong Wang Xin +3 位作者 Xu Hailong Li Yanchao Ma Tongxiang Wang Shaopeng 《稀有金属材料与工程》 北大核心 2026年第2期315-321,共7页
Dual-layer thermal barrier coatings(TBCs)with ultrahigh temperature resistance were prepared on the surface of molybdenum-rhenium alloy hot-end components.The preparation of the MoSi_(2)-Gd_(2)Zr_(2)O_(7)dual-layer TB... Dual-layer thermal barrier coatings(TBCs)with ultrahigh temperature resistance were prepared on the surface of molybdenum-rhenium alloy hot-end components.The preparation of the MoSi_(2)-Gd_(2)Zr_(2)O_(7)dual-layer TBCs was designed based on the coefficient of thermal expansion and the coating functionality,and it was completed using atmospheric plasma spraying technique.The microstructure,mechanical properties,and thermal properties were analyzed.Results indicate that the adhesion of the prepared dual-layer composite TBCs is excellent,and no noticeable cracks appear at the interface.Compared with the MoSi_(2)coating with a low fracture toughness(0.88 MPa·m^(1/2)),the Gd_(2)Zr_(2)O_(7)coating exhibits higher fracture toughness(1.74 MPa·m^(1/2))and stronger resistance to crack propagation.The prepared MoSi_(2)-Gd_(2)Zr_(2)O_(7)composite coatings have a high porosity(39%),low thermal conductivity(1.020 W·(m·K)^(−1),1200℃),and low thermal diffusivity(0.249 mm^(2)/s,1200℃).Additionally,they possess a high oxygen-vacancy concentration,which ensures excellent insulation performance. 展开更多
关键词 MoSi_(2)-Gd_(2)Zr_(2)O_(7)coating molybdenum-rhenium alloy TBCS thermal insulation performance
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Hemin with strong adsorption on zinc anode as a multi-functional interface layer for highly reversible Zn-ion batteries
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作者 Liang Wang Weitao Li +9 位作者 Lei Zheng Mengmin Jia Dai-Huo Liu Dongmei Dai Zhuangzhuang Zhang Chunyu Ma Bao Wang Shengli Zhang Li Su Bao Li 《Chinese Chemical Letters》 2026年第1期716-721,共6页
Aqueous zinc-ion batteries(AZIBs) are regarded as one of the most promising energy conversion and storage devices.Nevertheless,side reactions and dendrite growth on the zinc metal anode hinder their widespread applica... Aqueous zinc-ion batteries(AZIBs) are regarded as one of the most promising energy conversion and storage devices.Nevertheless,side reactions and dendrite growth on the zinc metal anode hinder their widespread application.In this study,hemin was employed as a multi-functional artificial interface for the first time to inhibit the disordered growth of zinc dendrites and mitigate side reactions.Theoretical calculations indicate that hemin is preferentially adsorbed onto the zinc anode,thus blocking the interaction between the active zinc anode and electrolyte.Compared with zinc foil,the Hemin@Zn anode demonstrates enhanced corrosion resistance,a decrease in hydrogen evolution,and more orderly deposition of zinc.As expected,the symmetric cell with Hemin@Zn anode can sustain up to 4000 h at 0.2 mA/cm^(2),0.2 mAh/cm^(2).Asymmetric Zn//Cu cells exhibit an average coulombic efficiency exceeding 99.72 % during 500 cycles.Moreover,the full cell Hemin@Zn//NH_(4)V_(4)O_(10) delivers a superior capacity up to 367 m Ah/g and the discharge capacity retention reaches 124 mAh/g after 1200 cycles even at a current density of 5 A/g.This work provides a simple and effective method for constructing a robust artificial interface to promote the application of long-life AZIBs. 展开更多
关键词 HEMIN Zn-ion batteries Interface DENDRITES Strong adsorption Drop coating
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Damage behavior of aircraft radome under high-speed jet impact
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作者 Minggong SHA Yutong LI +5 位作者 Ming LI Zheng WEI Ying SUN Arseny BABAYTSEV Gregory FEDOTENKOV Yulong LI 《Chinese Journal of Aeronautics》 2026年第2期215-233,共19页
As the main component of the aircraft leading edge,the radome is often the first to be hit by raindrops and cause structural damage when passing through a rain field.Rain resistant coating is usually applied to ensure... As the main component of the aircraft leading edge,the radome is often the first to be hit by raindrops and cause structural damage when passing through a rain field.Rain resistant coating is usually applied to ensure the performance protection requirements.In order to clarify the rain erosion damage mechanism of radome coating and explore the influencing factors and mechanisms of coating material damage under different jet impact conditions,impact tests were conducted on three types of skin coating samples,and the damage mode was observed through electron microscopy characterization.The experimental results show that the typical morphology of rain erosion damage is annular surface peeling damage.The damage area and volume of the three coating samples increase with the continuous increase of raindrop impact velocity.The threshold velocity for initial damage to the coating is about 360 m/s;under the influence of the velocity component,the reduction in impact angle leads to a gradual reduction in the degree of damage to the sample.ABAQUS finite element simulation software was used to establish a constitutive model for coating rain erosion simulation and obtain the propagation law of stress waves during the impact process.The simulation results show that at the 75°impact angle,the jet impacts the surface of the specimen at different velocities,and as the impact velocity increases,the Mises equivalent stress on the surface shows an increasing trend,which is one of the main factors causing damage with increasing velocity.The effectiveness,rain erosion damage mode,and influencing mechanism of the model were verified based on the test results;the dynamic failure mechanism of the sample was further studied,and the stress propagation process at different impact angles was compared,revealing the influence mechanism and damage law of the impact angle on the high-speed raindrop impact of the material. 展开更多
关键词 COATING High-speed jet Impact dynamics RADOME Rain erosion damage
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Multifunctional Hierarchical Coatings with Synergistic Anti-graffiti and Ultra-hardness Properties for NIR Shielding Energy-saving Windows
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作者 Li-Kai Yang Qian-Qian Hou +13 位作者 Shu-Di Ying Cong-Cong Zhai Xu Yang Yu-Lin Yin Qian Liu Bing Wei Ming-Wei Shao Pan-Pan Zhao Xiu-Xian Zhao Wen-Ting Li Jia-Chen Ma Chuan-Yong Zong Yong Nie Xu-Chuan Jiang 《Chinese Journal of Polymer Science》 2026年第3期833-844,I0016,共13页
The efficient regulation of sunlight to minimize unnecessary energy exchange through windows plays a vital role in advancing building energy efficiency.However,the inferior stability of cerium-doped tungsten trioxide(... The efficient regulation of sunlight to minimize unnecessary energy exchange through windows plays a vital role in advancing building energy efficiency.However,the inferior stability of cerium-doped tungsten trioxide(CWO)as a near-infrared(NIR)shielding material,combined with the poor mechanical properties of its coatings,poses significant challenges for long-term thermal insulation performance.Here,a hierarchical thermal insulation coating with multifunctional integration has been developed.The inner layer’s excellent NIR shielding performance(94.4%)results in a temperature reduction of 13.6°C,demonstrating outstanding thermal insulation.Meanwhile,the external layer composed of polysilsesquioxane grafted by carboxylated hexafluoropropylene trimer offers exceptional weather resistance due to the low surface energy.The fluorosilicone coating effectively mitigates oxidation of CWO,as evidenced by the retention of NIR shielding performance even after 30 days of exposure to 60°C and 90%relative humidity.Furthermore,the coating demonstrates superior anti-graffiti properties and achieves an ultra-high mechanical strength of 0.49 GPa through precise fluorine content modulation.This hierarchical design integrates high hardness,excellent abrasion resistance,anti-graffiti functionality,transparency,and long-term operational durability into a single smart window system,offering a promising solution for reducing building energy consumption. 展开更多
关键词 Smart window Anti-graffiti Abrasion resistance Long-term stability Multifunctional coating
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Engineering repairable nanoporous functional coatings on arbitrary substrates by manipulating phase behaviors of block copolymers
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作者 Jiemei Zhou Xiang Ying +3 位作者 Daiwen Li Mingjie Wei Xiangyue Ye Yong Wang 《Chinese Journal of Chemical Engineering》 2026年第1期36-46,共11页
Nanoporous polymers are extensively coated on various substrates to deliver optical,permselective,or other functions.However,it remains desired to fast produce uniform nanoporous polymer coatings on substrates with co... Nanoporous polymers are extensively coated on various substrates to deliver optical,permselective,or other functions.However,it remains desired to fast produce uniform nanoporous polymer coatings on substrates with complex surfaces.Herein,by manipulating the interactions between block copolymers and selective solvents,we prepare repairable nanoporous polymers on arbitrary substrates.This is realized by an extremely simple sequential coating process:sequential coating of block copolymers and their swelling agents on substrate surfaces.The swelling agents are comprised of two solvents that swell the constituent blocks of the copolymers to different degrees,rapidly producing polymer coatings with uniform,interconnected,sub-50 nm pores.This sequential coating process is able to conformally build nanoporous polymers on nonplanar substrates with large lateral sizes and complex surface features,and also to in situ repair defects arising during usages.We further demonstrate that the nanoporous coatings show excellent antireflective and membrane separation performances.This sequential coating process is dictated by polymer–solvent interactions,and is expected to find applications in diverse fields for its simplicity,adaptability,and the capability to produce well-defined nanoporosities. 展开更多
关键词 Nanoporous coating Block copolymers Selective swelling Polymer-solvent interactions ANTIREFLECTION
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Multifunctional CEOS-DOPO-PDMS Modified Epoxy NP-GLIDE Coatings with Improved Combustion Behavior, Hydrophobicity, and Abrasion Resistance
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作者 Guoguan Wu Baipei Liu +7 位作者 Dawei Jiang Haorui Yu Jiayu Fu Chengze Yu Hanbin Wang Miaojun Xu Zijian Wu Bin Li 《Journal of Polymer Materials》 2026年第1期183-199,共17页
Epoxy resins are extensively employed in the construction,electronics,automotive,and aerospace industries owing to their outstandingmechanical strength,chemical resistance,and electrical insulation.However,their intri... Epoxy resins are extensively employed in the construction,electronics,automotive,and aerospace industries owing to their outstandingmechanical strength,chemical resistance,and electrical insulation.However,their intrinsic flammability,poor wear resistance,and hydrophilicity significantly restrict broader applications.To address these challenges,a novel multifunctional coating(CEOS-DOPO-PDMS)has been designed and fabricated via an NPGLIDE approach.The system integrates 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide(DOPO)as a reactive phosphorus-based flame retardant,epoxy-terminated polydimethylsiloxane(EP-PDMS)as a hydrophobic segment,and cycloaliphatic epoxy-functionalized oligosiloxanes(CEOS)as a cross-linking co-reactant.The resulting CEOSDOPO-PDMS hybrid precursor was blended with bisphenol A diglycidyl ether(DGEBA)in N-methyl-2-pyrrolidone(NMP)and subsequently cured to form epoxy-based NP-GLIDE coatings.The optimized coating exhibits superior integrated performance,including high hydrophobicity(water contact angle up to 109.6°),outstanding abrasion resistance(5H pencil hardness),and excellent flame retardancy(resisting combustion at 500℃ for 30 s).These enhancements originate from the cooperative effects of the Si-O-Si framework,low-surface-energy PDMS chains,and phosphorus-containing DOPOmoieties,which together provide stable thermal protection,surface roughness-induced hydrophobicity,and durable mechanical integrity.An effective strategy for constructing multifunctional epoxy-based coatingswith simultaneously enhanced flame retardancy,wear resistance,andwater repellency is presented.The CEOSDOPO-PDMS system holds great promise for advanced protective applications in construction,transportation,and aerospace engineering. 展开更多
关键词 NP-GLIDE epoxy resin flame retardant abrasion resistance hydrophobic coating
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Multiscale investigation of oxidation mechanism in AlCrSiN multilayer coatings via experiments and ab initio molecular dynamics
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作者 Ji-yuan LIU Shu-bing HU +6 位作者 Bo PENG Jing-jing TIAN Si-qi ZENG Hai-xin CHANG Hong-ya LI Jin-ke YU Fei GUO 《Transactions of Nonferrous Metals Society of China》 2026年第2期552-570,共19页
An advanced AlCrSiN/AlCrN/CrN/Cr multilayer coating was developed via hybrid multiarc ion plating and high-power impulse magnetron sputtering.The multilayer design enhanced the substrate-coating compatibility,achievin... An advanced AlCrSiN/AlCrN/CrN/Cr multilayer coating was developed via hybrid multiarc ion plating and high-power impulse magnetron sputtering.The multilayer design enhanced the substrate-coating compatibility,achieving a critical load of 87.8 N.Silicon doping induced nanocrystallization and amorphization,increasing the hardness to 26 GPa.At high temperatures,a nanoscale Cr-rich(Cr,Al)_(2)O_(3) layer was formed,effectively inhibiting oxygen diffusion.The coating underwent unique phase transformations,during which Cr_(2)N and amorphous Si3N4 were converted into dispersed SiCr_(3) nanoparticles,which stabilized Cr atoms and suppressed their outward diffusion.Ab initio molecular dynamics simulations revealed that Cr atoms exhibited higher chemical activity and oxygen-capture capability than Al atoms and Si atoms served as diffusion barriers by pinning onto the oxidized surface,considerably improving the oxidation resistance of the coating. 展开更多
关键词 physical vapor deposition AlCrSiN coating OXIDATION AIMD simulation
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Distinctive heat treatment behaviors and performance impacts of aluminum silicon coated hot stamping steels
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作者 BAO Ping TAN Ning +3 位作者 LIU Hao ZHANG Lei JIN Xinyan GONG Tao 《Baosteel Technical Research》 2026年第1期1-9,共9页
The widespread application of aluminum silicon coatings in hot-stamping steel can be attributed to their exceptional heat resistance and oxidation resilience.However,alterations in the diffusion behavior of aluminum s... The widespread application of aluminum silicon coatings in hot-stamping steel can be attributed to their exceptional heat resistance and oxidation resilience.However,alterations in the diffusion behavior of aluminum silicon coatings during the heating process,such as coating corrosion and welding,considerably affect the ultimate performance of components post hot stamping.This study scrutinized the distinctive behaviors exhibited by two typical coatings,namely 30/30 and 75/75 coatings,throughout the heat treatment process and their consequential effects on welding and other inherent properties of typical components.Our investigation unveiled the heightened susceptibility of the 30/30 coating to the development of pinhole leakage defects on the surface compared with the 75/75 coating.Moreover,the diffusion rate of the 30/30 coating surpassed that of the 75/75 coating.This discrepancy holds significance as it influences welding processes,coating corrosion resistance,and attainable heat treatment windows. 展开更多
关键词 aluminum silicon coating hot stamping pinhole leakage defect welding corrosion resistance
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Nanostructure-dependent colouration efficiency of electrochromic coatings using 0D,1D,and 2D WO3 for smart windows
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作者 Mahnaz Dadkhah Md Julker Nine +2 位作者 Kosala Purasinhala Gurleen Singh Sandhu Dusan Losic 《Nano Materials Science》 2026年第2期255-263,共9页
Towards the development of highly efficient electrochromic coatings,the crystallinity,morphology(e.g.size and shape)of electrochromic nanomaterials,and their charge insertion capacities play a significant role.Herein,... Towards the development of highly efficient electrochromic coatings,the crystallinity,morphology(e.g.size and shape)of electrochromic nanomaterials,and their charge insertion capacities play a significant role.Herein,we report the structure-dependent colouration effciency in electrochromic coatings based on the use of 0D,1D and 2D tungsten trioxide(WO_(3))nanostructures.A series of WO_(3)with different nanostructures were prepared and used as working electrodes to fabricate electrochromic devices for smart windows applications.Facile spray coating was applied on fluorine-doped tin oxide(FTO)substrate to make~70%transparent working electrodes to investigate their charge insertion capacities,electrochromic active surface area,and colouration efficiency.Results showed that the 2D WO_(3)nanoflakes displayed the highest diffusion coefficient for the intercalation of 1.52×10^(-10)cm^(2)/s with an increased electrochemical active surface area of 25.10 mF/cm^(2),a large modulation of optical reflectance(42.63%)with 3.79 s shorter response time for bleaching and a greater colouration efficiency(CE)value(89.29 cm^(2)/C)at 700 nm compared to the CE value for 1D WO_(3)(of 22 cm^(2)/C)and 0D WO_(3)(8 cm^(2)/C).The outcome of this study provides a new insight and valuable contribution to design an efficient electrochromic coating by controlling and optimising the nanostructures of selective electrochromic materials. 展开更多
关键词 Electrochromic devices Smart window WO3 nanostructures Colouration efficiency Spray coating
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Interfacial Modulation of Lithium Deposition via an Adaptive Poly(Ether-Thiourea)Protective Layer
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作者 Yongsheng Zhang Xiaolong He +6 位作者 Yinyu Xiang Lieke M.H.Germain Marco Di Michiel Pierre-Olivier Autran Yutao Pei Petra Rudolf Giuseppe Portale 《Carbon Energy》 2026年第2期44-58,共15页
Lithium metal is a promising anode material for high-energy-density batteries;however,its practical applications are significantly hindered by unstable lithium deposition and dendrite growth at the solid electrolyte i... Lithium metal is a promising anode material for high-energy-density batteries;however,its practical applications are significantly hindered by unstable lithium deposition and dendrite growth at the solid electrolyte interface.Functional protective coatings on lithium metal surfaces offer a viable solution to these challenges.Herein,an innovative adaptive protective layer for lithium metal anodes based on a thiourea H-bonded supramolecular polymer is developed for the first time.With dense thiourea H-bonding,the lithium bis(trifluoromethanesulfonyl)imide(Li TFSI)incorporated poly(ether-thiourea)protective layer shows strong adhesion to the lithium metal surface and good adaptive properties.The unique viscoelastic and flow characteristics of the poly(ether-thiourea)coating facilitate uniform Li⁺flux,effectively suppressing dendrite formation at the solid electrolyte interface.Furthermore,this innovative polymer integrates in situ generated compounds,such as Li3N and Li_(2)O,significantly enhancing interfacial stability.A comprehensive analysis involving X-ray photoelectron spectroscopy,scanning electron microscopy,X-ray tomography,and COMSOL simulations elucidates the beneficial effects of the adaptive coating.Enhanced performances in Li||Cu,Li||Li,Li||LiFePO_(4),and Li||S cells demonstrate the effectiveness of the poly(ether-thiourea)coating and its undeniable capability to improve lithium deposition and cycling stability.This study highlights a promising new candidate for developing supramolecular materials capable of stabilizing lithium metal anodes. 展开更多
关键词 adaptive coating cycling stability dendrite growth lithium metal anode protective layer
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Optimizing zirconium-based conversion films on galvanized steel:reaction dynamics and corrosion resistance
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作者 LI Yaomin NAN Jiazheng RUAN Qiushi 《Baosteel Technical Research》 2026年第1期10-18,共9页
Zirconium-based conversion coatings have emerged as an environmentally friendly alternative to traditional phosphate coatings in the automotive industry,offering excellent corrosion resistance and effective protection... Zirconium-based conversion coatings have emerged as an environmentally friendly alternative to traditional phosphate coatings in the automotive industry,offering excellent corrosion resistance and effective protection for metal substrates.However,due to their relatively recent use in industrial applications,process control during zirconium conversion coating remains underdeveloped.In this study,the reaction kinetics of galvanized steel during the zirconium conversion coating were investigated systematically.The findings reveal an optimal coating time,after which the corrosion resistance of galvanized steel decreases.This decline results from the formation of corrosion cavities that cause discontinuities in the protective zirconium layer.These insights provide guidance for optimizing zirconium conversion coating processes in industrial manufacturing. 展开更多
关键词 surface treatment galvanized steel Zr conversion coating corrosion resistance
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Effect of Green Lipid Treatments on the Morphological,Physical,Hygroscopic,and Mechanical Properties of Pineapple Leaf Fibres
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作者 Achille DésiréBetenéOmgba Cheryle Manfouo Tchoupmene +9 位作者 Benoit Ndiwe Antonios N.Papadopoulos Remy Legrand Ndoumou Belinga Julien Clerc Obam Christel Cedrig Laris Nsi Ongo Ioanna A.Papadopoulou Armel Brice Mvogo Fabien BetenéEbanda Atangana Ateba Antonio Pizzi 《Journal of Renewable Materials》 2026年第3期76-97,共22页
The high hydrophilicity of pineapple leaf fibres(PALF)limits their use in cement-and gypsum-based composites exposed to moisture.This study evaluates,for the first time,the combined effect of palm kernel oil and beesw... The high hydrophilicity of pineapple leaf fibres(PALF)limits their use in cement-and gypsum-based composites exposed to moisture.This study evaluates,for the first time,the combined effect of palm kernel oil and beeswax on the hygroscopic resistance and mechanical stability of PALF.The fibres were functionalised with three formulations(oil,wax,and a 1:2 oil/wax blend)applied at different mass ratios(CR=0.5-2).Treatments increased the average bundle diameter by up to+46%(238μm)and reduced density down to 1.06 g/cm^(3).Hygroscopically,water absorption decreased from 202.4%(raw fibres)to 76.3%(CR=2),representing a maximum reduction of 59.4%in saline medium,while moisture regain dropped from 27.9%to 14.6%(−47.7%).The oil/wax blend proved most effective,simultaneously reducing water absorption(−51.2%)and moisture regain(−46.8%)at CR=1.Mechanically,the fibres retained tensile strength(415.2 vs.460.8 MPa,+11%at CR=1)and exhibited enhanced ductility(+62.5%,with elongation at break increasing from 1.6%to 2.6%),without significantly altering Young’s modulus(12.3 to 10 GPa).Water absorption kinetics were accurately described by the Czel and Mohsenin models(R^(2)>0.98).These findings clearly demonstrate that bio-based lipid coatings can provide an eco-friendly alternative to conventional chemical treatments.They improve hygroscopic resistance and preserve mechanical integrity of PALF,providing original quantitative data for their integration into durable cement-and gypsum-based composites subjected to humid or cyclic wet-dry conditions. 展开更多
关键词 Pineapple leaf fibres green functionalisation water absorption mechanical performance lipid coating
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Biomembrane nanostructure-driven potentiation of bacterial protein vaccines:Mechanisms,platforms,and immunotherapeutic advances
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作者 Yuan-Yuan Chen Hui-Fen Qiang +2 位作者 Jie Gao Ting-Lin Zhang Yan Wu 《Infectious Diseases Research》 2026年第1期13-22,共10页
The global burden of bacterial infections,exacerbated by antimicrobial resistance(AMR),necessitates innovative strategies.Bacterial protein vaccines offer promise by eliciting targeted immunity while circumventing AMR... The global burden of bacterial infections,exacerbated by antimicrobial resistance(AMR),necessitates innovative strategies.Bacterial protein vaccines offer promise by eliciting targeted immunity while circumventing AMR.However,their clinical translation is hindered by their inherently low immunogenicity,often requiring potent adjuvants and advanced delivery systems.Biomembrane nanostructures(e.g.,liposomes,exosomes,and cell membrane-derived nanostructures),characterized by superior biocompatibility,intrinsic targeting ability,and immune-modulating properties,could serve as versatile platforms that potentiate vaccine efficacy by increasing antigen stability,enabling codelivery of immunostimulants,and facilitating targeted delivery to lymphoid tissues/antigen-presenting cells.This intrinsic immunomodulation promotes robust humoral and cellular immune responses to combat bacteria.This review critically reviews(1)key biomembrane nanostructure classes for bacterial protein antigens,(2)design strategies leveraging biomembrane nanostructures to enhance humoral and cellular immune responses,(3)preclinical efficacy against diverse pathogens,and(4)translational challenges and prospects.Biomembrane nanostructure-driven approaches represent a paradigm shift in the development of next-generation bacterial protein vaccines against resistant infections. 展开更多
关键词 biomembrane nanostructures bacterial protein vaccines antimicrobial resistance vaccine delivery IMMUNOMODULATION nanovaccines liposomes EXOSOMES cell membrane coating
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Characteristics of VOCs in coating materials manufacturing and contributions to environmental implication based on on-site sampling in Shandong Province
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作者 Sisi Huo Xu Guan +7 位作者 Jiao Li Xin Zhang Jie Li Yanbo Peng Anbao Gong Huan Xie Shurui Chen Qingzhu Zhang 《Journal of Environmental Sciences》 2026年第2期497-507,共11页
Volatile organic compounds(VOCs)are a significant class of air contaminants,and their anthropogenic emissions in the environment are crucial for understanding and controlling VOC pollution and associated ozone formati... Volatile organic compounds(VOCs)are a significant class of air contaminants,and their anthropogenic emissions in the environment are crucial for understanding and controlling VOC pollution and associated ozone formation.Numerous studies have assessed VOC emissions from critical industrial sources in China,but understanding VOC emissions within the coating materials manufacturing industry remains limited.This study elucidates the characteristics of VOC emissions from the coating materials manufacturing industry through a comprehensive sector-based field sampling,constructs the emission source profiles,quantifies provincial-level VOC emissions,and evaluates the potential health risks to workers.According to experimental results,the main emissions from water-based coatings are oxygenated volatile organic compounds,which significantly contribute to ozone(O_(3))formation.The highest emissions from solvent-based coatings are aromatics.Health risk analysis revealed potential health impacts on workers in the workshop,indicating that solvent-based workshops posing a higher carcinogenic risk than water-based coating workshops.Strict control measures for fugitive emissions should be implemented to mitigate human health risks.Our results also demonstrate that the VOC emissions from coating materials manufacturing are mainly influenced by regional imbalances in coating production in China.Additionally,we explore the•OH and Cl•radical chemistry with ethyl acetate,revealing that Cl•is more likely to undergo H-abstraction reactions(HAA)than•OH.This study provides a source profile of the coating materials manufacturing industry and offers guidance on minimizing environmental impacts and promoting healthier working environments in the industry. 展开更多
关键词 Volatile organic compounds Health risks Emission characteristics Coating materials manufacturing
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Arginine-derived inhibitor-based anticorrosion coating for carbon steel in 3-nitro-1,2,4-triazol-5-one (NTO) medium: Integration of experimental and multiscale simulations
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作者 Ziyang Guo Zhe Zhang +3 位作者 Shuai Zhao Manman Wang Yujie Qiang Qinghai Shu 《Defence Technology(防务技术)》 2026年第3期307-322,共16页
As a representative insensitive high explosive,3-nitro-1,2,4-triazol-5-one(NTO)has garnered significant attention due to its ability to substantially reduce the risk of accidental detonation in munitions.However,its i... As a representative insensitive high explosive,3-nitro-1,2,4-triazol-5-one(NTO)has garnered significant attention due to its ability to substantially reduce the risk of accidental detonation in munitions.However,its inherent acidity induces severe interfacial corrosion of metal casings,thereby limiting its engineering applications.Based on the micro-corrosion mechanism of NTO on carbon steel(CS),this study designs an arginine-derived corrosion inhibitor,N2-[(phenylamino)thioxomethyl]-arginine(PTA).Electrochemical tests reveal that PTA exhibits an outstanding corrosion inhibition efficiency of 98.0%in NTO solution.Density functional theory(DFT)and molecular dynamics(MD)simulations elucidate the inhibition mechanism of PTA,demonstrating that it not only co-adsorbs with NTO^(−) onto the CS surface to form a dense and stable protective film but also disrupts the strong interactions between NTO^(−) and Fe,thereby suppressing nitro group-induced reduction,decomposition,and excessive surface oxidation.Furthermore,a PTA-loaded mesoporous silica(mSiO_(2))nanoparticles(NPs)-reinforced epoxy resin(EP)composite coating was constructed.Benefiting from the enhanced barrier properties of PTA@mSiO_(2) NPs and the synergistic effect between PTA and NTO^(−),the low-frequency impedance of the composite coating remained as high as 1.29×10^(9)Ω·cm^(2) after 30 days of immersion in NTO solution,exhibiting a two-order-of-magnitude improvement compared to the pure EP coating.This study proposes an effective corrosion control strategy to mitigate NTO-induced corrosion,providing insights into the development of advanced corrosion protection strategies for broader applications. 展开更多
关键词 Carbon steel 3-Nitro-1 2 4-triazol-5-one Corrosion inhibitor Composite coating Multiscale simulations
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The steady-state dynamic contact of a viscoelastic FGM-coated half-plane under a rigid flat punch
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作者 Xiaomin WANG Liaoliang KE +1 位作者 Jie SU Junhong GUO 《Applied Mathematics and Mechanics(English Edition)》 2026年第1期61-76,共16页
This study explores the dynamic contact response of a viscoelastic functionally graded material(FGM)-coated half-plane under a rigid flat punch subjected to a time-harmonic vertical force.The elastic modulus and mass ... This study explores the dynamic contact response of a viscoelastic functionally graded material(FGM)-coated half-plane under a rigid flat punch subjected to a time-harmonic vertical force.The elastic modulus and mass density of the FGM coating vary exponentially along the thickness direction.The FGM coating and the homogeneous half-plane possess viscoelastic properties,which are described by a linearly hysteretic damping model.By applying the asymptotic method and the Fourier integral transform technique,the contact problem is converted into a Cauchy singular integral equation.The effects of excitation frequency,gradient index,damping factor ratio,and punch width on the vertical impedance and dynamic contact stress are analyzed.The results indicate that adjusting the gradient index of the FGM coating can significantly affect the contact stress and vertical impedance. 展开更多
关键词 dynamic contact functionally graded material(FGM)coating hysteretic damping flat punch
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Hypervelocity impact response and protection for the track steels of rocket sled system via light-gas gun experiments
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作者 Siwei Zhao Yi Zeng +5 位作者 Xuewen Zhou Weixing Zhao Botao Xie Jianbin Jing Yan Chen Yilun Liu 《Defence Technology(防务技术)》 2026年第2期282-293,共12页
Hypervelocity rocket sled systems are critical for testing advanced military technologies,yet track damage at speeds exceeding Mach 5 remains a significant challenge for system reliability and performance.In this stud... Hypervelocity rocket sled systems are critical for testing advanced military technologies,yet track damage at speeds exceeding Mach 5 remains a significant challenge for system reliability and performance.In this study,we investigated the hypervelocity impact response and protection for highstrength U71 Mn or bainitic steel used in rocket sled tracks.Flyer plate impact experiments using a two-stage light-gas gun were conducted to study the hypervelocity collision response,followed by the microstructural characterization via optical microscope,scanning electron microscopy equipped with electron backscatter diffraction to reveal underlying damage mechanisms.Then,the calibrated thermalmechanical coupled finite element simulations using the Johnson-Cook constitutive model and MieGrüneisen equation of state were carried out.Results indicated that bainitic steel exhibits superior impact resistance with predominantly smooth scratch-dominated damage due to its higher ductility.In contrast,U71 Mn suffered significant material spallation and crack propagation arising from brittle fracture mechanisms.Zinc-rich epoxy primer coatings effectively mitigated stress concentration and temperature rise in the substrate at impacting velocities below 2.4 km/s,so as to suppress the microstructural damage such as adiabatic shear bands and dynamic recrystallization.However,coating protection diminished at ultra-high-speed impacts due to the coating failure.Dimensional analysis established quantitative relationships of the gouge damage size to projectile mass,impact velocity,and material yield strength.This study provides in-depth insights into damage mechanisms in hypervelocity rail systems,demonstrating that bainitic steel combined with protective coatings can significantly enhance impact resistance and system reliability,offering valuable guidance for the design and optimization of hypervelocity testing platforms. 展开更多
关键词 Hypervelocity rocket sled Gouge of the track steels Two-stage light-gas gun Microstructural characterization Coating protection
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