This work adopts a multi⁃step etching⁃heat treatment strategy to prepare porous silicon microsphere com⁃posite with Sb⁃Sn surface modification and carbon coating(pSi/Sb⁃Sn@C),using industrial grade SiAl alloy micro⁃sp...This work adopts a multi⁃step etching⁃heat treatment strategy to prepare porous silicon microsphere com⁃posite with Sb⁃Sn surface modification and carbon coating(pSi/Sb⁃Sn@C),using industrial grade SiAl alloy micro⁃spheres as a precursor.pSi/Sb⁃Sn@C had a 3D structure with bimetallic(Sb⁃Sn)modified porous silicon micro⁃spheres(pSi/Sb⁃Sn)as the core and carbon coating as the shell.Carbon shells can improve the electronic conductivi⁃ty and mechanical stability of porous silicon microspheres,which is beneficial for obtaining a stable solid electrolyte interface(SEI)film.The 3D porous core promotes the diffusion of lithium ions,increases the intercalation/delithia⁃tion active sites,and buffers the volume expansion during the intercalation process.The introduction of active met⁃als(Sb⁃Sn)can improve the conductivity of the composite and contribute to a certain amount of lithium storage ca⁃pacity.Due to its unique composition and microstructure,pSi/Sb⁃Sn@C showed a reversible capacity of 1247.4 mAh·g^(-1) after 300 charge/discharge cycles at a current density of 1.0 A·g^(-1),demonstrating excellent rate lithium storage performance and enhanced electrochemical cycling stability.展开更多
Electric-spark deposition (ESD) was adopted for depositing a Ti( CN) -based ceramic coating on the TC4 titanium alloy substrate using a laboratory-developed electric-spark deposition system, a nitrogen-sealed atmo...Electric-spark deposition (ESD) was adopted for depositing a Ti( CN) -based ceramic coating on the TC4 titanium alloy substrate using a laboratory-developed electric-spark deposition system, a nitrogen-sealed atmosphere and graphite electrode. The surface morphology, microstructure, interfacial behavior between the coatings and substrate, phase and element composition of the coatings were investigated by scanning electron microscope ( SEM ) , X-ray diffraction ( XRD ) , X-ray photoelectron spectroscopy ( XPS ) and Auger electron spectroscopy ( AES ) . Microhardness profile was measured with a Vickers microhardness tester. The results show that metallurgical bond between the coating and substrate is realized and the phase of coatings are made up of Ti( CN ) spherocrystal and dendritic crystal, TiV and C. Ti( CN) ceramic particles, which is in-situ synthesized by the reaction among titanium from the substrate, carbon from the graphite electrode and nitrogen from the shielding nitrogen gas, is about 600 mn and distributes dispersively among the coatings. Microharduess profile falls off with the coatings thickness increasing and the highest microhardness values of the superficial coating could be up to 1 496HV, which is six times more than that of the substrate.展开更多
针对ERNiCrFe-13焊丝熔敷金属拉伸过程中的微观组织演变规律和微裂纹的萌生扩展机制,采用SEM原位拉伸结合扫描电子显微镜(scanning electron microscope,SEM)观察和能谱(energy dispersive spectrometer,EDS)分析对熔敷金属组织及断裂...针对ERNiCrFe-13焊丝熔敷金属拉伸过程中的微观组织演变规律和微裂纹的萌生扩展机制,采用SEM原位拉伸结合扫描电子显微镜(scanning electron microscope,SEM)观察和能谱(energy dispersive spectrometer,EDS)分析对熔敷金属组织及断裂行为等进行分析.结果表明,ERNiCrFe-13焊丝熔敷金属组织主要由柱状晶γ相(NiCrFe固溶体)、枝晶间富Nb和Mo元素的Laves相(Cr,Fe,Ni)_(2)(Nb,Mo)、MC碳化物与共晶组织组成,Laves相的形成主要与凝固过程中Nb和Mo元素的偏析有关,且具有尺寸效应,水平方向Laves相尺寸大于4μm易发生开裂,断裂机制为枝晶间析出相在切应力作用下本体断裂萌生微裂纹,在轴向拉应力的作用下进一步沿晶界扩展连通至断裂失效,断口呈韧性断裂,碳化物偏析(NbC、TiC)和大尺寸Laves相是晶界裂纹产生的主要原因.展开更多
考察了添加在镍基催化剂中的碱土金属助剂对甲烷与空气制合成气的催化反应性能的影响。并对催化剂用TPO、TPR、CO2 TPD、XPS及CO脉冲色谱对催化剂进行了表征。实验表明 ,碱土金属助剂对降低催化剂结炭有一定的作用 ,催化剂抗积炭顺序为...考察了添加在镍基催化剂中的碱土金属助剂对甲烷与空气制合成气的催化反应性能的影响。并对催化剂用TPO、TPR、CO2 TPD、XPS及CO脉冲色谱对催化剂进行了表征。实验表明 ,碱土金属助剂对降低催化剂结炭有一定的作用 ,催化剂抗积炭顺序为Ni BaO CaO Al2 O3>Ni SrO CaO Al2 O3>Ni MgO CaO Al2 O3>Ni CaO Al2 O3。而且 ,添加了碱土金属催化剂的Ni晶粒减小、结合能负位移和催化剂吸附CO2 的能力变化顺序都与积炭量减少顺序一致。其中尤以Ni BaO CaO Al2 O3 催化剂既有较高的活性 。展开更多
文摘This work adopts a multi⁃step etching⁃heat treatment strategy to prepare porous silicon microsphere com⁃posite with Sb⁃Sn surface modification and carbon coating(pSi/Sb⁃Sn@C),using industrial grade SiAl alloy micro⁃spheres as a precursor.pSi/Sb⁃Sn@C had a 3D structure with bimetallic(Sb⁃Sn)modified porous silicon micro⁃spheres(pSi/Sb⁃Sn)as the core and carbon coating as the shell.Carbon shells can improve the electronic conductivi⁃ty and mechanical stability of porous silicon microspheres,which is beneficial for obtaining a stable solid electrolyte interface(SEI)film.The 3D porous core promotes the diffusion of lithium ions,increases the intercalation/delithia⁃tion active sites,and buffers the volume expansion during the intercalation process.The introduction of active met⁃als(Sb⁃Sn)can improve the conductivity of the composite and contribute to a certain amount of lithium storage ca⁃pacity.Due to its unique composition and microstructure,pSi/Sb⁃Sn@C showed a reversible capacity of 1247.4 mAh·g^(-1) after 300 charge/discharge cycles at a current density of 1.0 A·g^(-1),demonstrating excellent rate lithium storage performance and enhanced electrochemical cycling stability.
基金The work was supported by the Natural Science Foundation of Hebei Province of China under Grant No. E2007000566.
文摘Electric-spark deposition (ESD) was adopted for depositing a Ti( CN) -based ceramic coating on the TC4 titanium alloy substrate using a laboratory-developed electric-spark deposition system, a nitrogen-sealed atmosphere and graphite electrode. The surface morphology, microstructure, interfacial behavior between the coatings and substrate, phase and element composition of the coatings were investigated by scanning electron microscope ( SEM ) , X-ray diffraction ( XRD ) , X-ray photoelectron spectroscopy ( XPS ) and Auger electron spectroscopy ( AES ) . Microhardness profile was measured with a Vickers microhardness tester. The results show that metallurgical bond between the coating and substrate is realized and the phase of coatings are made up of Ti( CN ) spherocrystal and dendritic crystal, TiV and C. Ti( CN) ceramic particles, which is in-situ synthesized by the reaction among titanium from the substrate, carbon from the graphite electrode and nitrogen from the shielding nitrogen gas, is about 600 mn and distributes dispersively among the coatings. Microharduess profile falls off with the coatings thickness increasing and the highest microhardness values of the superficial coating could be up to 1 496HV, which is six times more than that of the substrate.
文摘针对ERNiCrFe-13焊丝熔敷金属拉伸过程中的微观组织演变规律和微裂纹的萌生扩展机制,采用SEM原位拉伸结合扫描电子显微镜(scanning electron microscope,SEM)观察和能谱(energy dispersive spectrometer,EDS)分析对熔敷金属组织及断裂行为等进行分析.结果表明,ERNiCrFe-13焊丝熔敷金属组织主要由柱状晶γ相(NiCrFe固溶体)、枝晶间富Nb和Mo元素的Laves相(Cr,Fe,Ni)_(2)(Nb,Mo)、MC碳化物与共晶组织组成,Laves相的形成主要与凝固过程中Nb和Mo元素的偏析有关,且具有尺寸效应,水平方向Laves相尺寸大于4μm易发生开裂,断裂机制为枝晶间析出相在切应力作用下本体断裂萌生微裂纹,在轴向拉应力的作用下进一步沿晶界扩展连通至断裂失效,断口呈韧性断裂,碳化物偏析(NbC、TiC)和大尺寸Laves相是晶界裂纹产生的主要原因.
文摘考察了添加在镍基催化剂中的碱土金属助剂对甲烷与空气制合成气的催化反应性能的影响。并对催化剂用TPO、TPR、CO2 TPD、XPS及CO脉冲色谱对催化剂进行了表征。实验表明 ,碱土金属助剂对降低催化剂结炭有一定的作用 ,催化剂抗积炭顺序为Ni BaO CaO Al2 O3>Ni SrO CaO Al2 O3>Ni MgO CaO Al2 O3>Ni CaO Al2 O3。而且 ,添加了碱土金属催化剂的Ni晶粒减小、结合能负位移和催化剂吸附CO2 的能力变化顺序都与积炭量减少顺序一致。其中尤以Ni BaO CaO Al2 O3 催化剂既有较高的活性 。