Transition metal oxides have been actively exploited for application in lithium ion batteries due to their facile synthesis,high specific capacity,and environmental-friendly.In this paper,Fe3O4@TiO2@C yolk-shell(Y-S)s...Transition metal oxides have been actively exploited for application in lithium ion batteries due to their facile synthesis,high specific capacity,and environmental-friendly.In this paper,Fe3O4@TiO2@C yolk-shell(Y-S)spheres,used as anode material for lithium ion batteries,were successfully fabricated by Stober method.XRD patterns reveal that Fe3O4@TiO2@C Y-S spheres possess a good crystallinity.But the diffraction peaks’intensity of Fe3O4 crystals in the composites is much weaker than that of bare Fe3O4 spheres,indicating that the outer anatase TiO2@C layer can cover up the diffraction peaks of inner Fe3O4 spheres.The yolk-shell structure of Fe3O4@TiO2@C spheres is further characterized by TEM,HAADFSTEM,and EDS mapping.The yolk-shell structure is good for improving the cycling stability of the inner Fe3O4 spheres during lithium ions insertion-extraction processes.When tested at 200 mA/g,the Fe3O4@TiO2@C Y-S spheres can provide a stable discharge capacity of 450 mAh/g over 100 cycles,which is much better than that of bare Fe3O4 spheres and TiO2@C spheres.Furthermore,cyclic voltammetry curves show that the composites have a good cycling stability compared to bare Fe3O4 spheres.展开更多
The uniform pore size distribution and inherent particle inseparability of iron-based metal-organic frameworks(Fe-MOFs)have been shown to significantly hinder their light-harvesting capabilities and charge carrier sep...The uniform pore size distribution and inherent particle inseparability of iron-based metal-organic frameworks(Fe-MOFs)have been shown to significantly hinder their light-harvesting capabilities and charge carrier separation efficiency.These intrinsic limitations compromise catalyst recyclability and reaction kinetics in practical scenarios,thereby impeding their applicability in the degradation of antibiotic pollutants such as levofloxacin(LEV)in aquatic environments.Here,we report an S-type heterojunction photocatalyst,MnFe2O4@MIL-101(Fe),prepared via hydrothermal coupling of magnetic MnFe2O4 nanoparticles with MIL-101(Fe).The synergistic effect of Fe3+/Fe2+and Mn3+/Mn2+redox pairs,combined with the heterojunction interface and built-in electric field,significantly enhances visible-light-driven photo-Fenton activity.The catalyst degraded over 95%of LEV with a rate constant of 0.05056 min-1 and retained 87%activity after five cycles.LC-MS analysis revealed defluorination and demethylation pathways,while toxicity assessments confirmed lower LC50,mutagenicity,and developmental toxicity of intermediates,validating the environmental viability of the photo-Fenton process.展开更多
Bi/Bi2Fe4O9nanocomposites consisting of Bi2Fe4O9nanosheets decorated with Bi nanodots were synthesized by a hydrothermal method.The formation of Bi nanodots on the Bi2Fe4O9nanosheet surfaces...Bi/Bi2Fe4O9nanocomposites consisting of Bi2Fe4O9nanosheets decorated with Bi nanodots were synthesized by a hydrothermal method.The formation of Bi nanodots on the Bi2Fe4O9nanosheet surfaces was attributed to the reducibility of 2-methoxyethanol in the precursor solution.Comparative photocatalytic evaluation reveals that the Bi/Bi2Fe4O9nanocomposites significantly enhance the degradation efficiency(99.0%)of bisphenol A compared with Bi2Fe4O9nanosheets(64.2%)under 120 min simulated solar irradiation.This remarkable enhancement can be attributed to the established Bi/Bi2Fe4O9heterojunction structure,which effectively facilitates the separation of photogenerated electron-hole pairs and accelerates interfacial charge transfer between the metallic Bi nanodots and semiconductor Bi2Fe4O9nanosheets.The synergistic effects arising from this unique architecture ultimately lead to superior photocatalytic performance.展开更多
为解决TiO_2光催化纳米材料在使用过程中不易回收的问题,采用直接水解法成功制备了磁性核壳结构Fe_3O_4@TiO_2纳米材料,采用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X-射线衍射仪(XRD)、傅里叶变换红外光谱仪(FT-IR)等对其物理化学...为解决TiO_2光催化纳米材料在使用过程中不易回收的问题,采用直接水解法成功制备了磁性核壳结构Fe_3O_4@TiO_2纳米材料,采用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X-射线衍射仪(XRD)、傅里叶变换红外光谱仪(FT-IR)等对其物理化学特性进行了表征,并且考察了制备工艺条件,如钛酸四丁酯(TBOT)用量、氨水用量、反应温度、反应时间等因素对Fe_3O_4@TiO_2纳米颗粒光催化效果的影响。结果表明,TiO_2在Fe_3O_4颗粒表面进行了有效的包覆,形成了良好的包覆层,优化后制备工艺条件为:TBOT用量1.0 m L、氨水用量0.3 m L、制备温度85℃、制备时间4h,所得Fe_3O_4@TiO_2纳米材料对罗丹明B的催化降解效率明显提高,罗丹明B降解率达到98%。对负载前后纳米颗粒的磁滞回线进行测试发现,TiO_2的包覆并未明显减弱Fe_3O_4的磁性,所制备的可回收磁性Fe_3O_4@TiO_2催化剂具有良好的稳定性和重复利用性能。展开更多
基金supported by the Tianjin Committee of Science and Technology (No.14JCZDJC32400)Tianjin Science and Technology Innovation Platform Program (No.14TXGCCX00017)
摘要Transition metal oxides have been actively exploited for application in lithium ion batteries due to their facile synthesis,high specific capacity,and environmental-friendly.In this paper,Fe3O4@TiO2@C yolk-shell(Y-S)spheres,used as anode material for lithium ion batteries,were successfully fabricated by Stober method.XRD patterns reveal that Fe3O4@TiO2@C Y-S spheres possess a good crystallinity.But the diffraction peaks’intensity of Fe3O4 crystals in the composites is much weaker than that of bare Fe3O4 spheres,indicating that the outer anatase TiO2@C layer can cover up the diffraction peaks of inner Fe3O4 spheres.The yolk-shell structure of Fe3O4@TiO2@C spheres is further characterized by TEM,HAADFSTEM,and EDS mapping.The yolk-shell structure is good for improving the cycling stability of the inner Fe3O4 spheres during lithium ions insertion-extraction processes.When tested at 200 mA/g,the Fe3O4@TiO2@C Y-S spheres can provide a stable discharge capacity of 450 mAh/g over 100 cycles,which is much better than that of bare Fe3O4 spheres and TiO2@C spheres.Furthermore,cyclic voltammetry curves show that the composites have a good cycling stability compared to bare Fe3O4 spheres.
基金supported by the National Natural Science Foundation of China(No.22178325)the Research Fund of Key Laboratory of the Ministry of Education for Advanced Catalysis Materials,Zhejiang Key Laboratory of Advanced Catalysis and Adsorption Materials。
摘要The uniform pore size distribution and inherent particle inseparability of iron-based metal-organic frameworks(Fe-MOFs)have been shown to significantly hinder their light-harvesting capabilities and charge carrier separation efficiency.These intrinsic limitations compromise catalyst recyclability and reaction kinetics in practical scenarios,thereby impeding their applicability in the degradation of antibiotic pollutants such as levofloxacin(LEV)in aquatic environments.Here,we report an S-type heterojunction photocatalyst,MnFe2O4@MIL-101(Fe),prepared via hydrothermal coupling of magnetic MnFe2O4 nanoparticles with MIL-101(Fe).The synergistic effect of Fe3+/Fe2+and Mn3+/Mn2+redox pairs,combined with the heterojunction interface and built-in electric field,significantly enhances visible-light-driven photo-Fenton activity.The catalyst degraded over 95%of LEV with a rate constant of 0.05056 min-1 and retained 87%activity after five cycles.LC-MS analysis revealed defluorination and demethylation pathways,while toxicity assessments confirmed lower LC50,mutagenicity,and developmental toxicity of intermediates,validating the environmental viability of the photo-Fenton process.
基金Funded by the National Natural Science Foundation of China(No.50902108)。
摘要Bi/Bi2Fe4O9nanocomposites consisting of Bi2Fe4O9nanosheets decorated with Bi nanodots were synthesized by a hydrothermal method.The formation of Bi nanodots on the Bi2Fe4O9nanosheet surfaces was attributed to the reducibility of 2-methoxyethanol in the precursor solution.Comparative photocatalytic evaluation reveals that the Bi/Bi2Fe4O9nanocomposites significantly enhance the degradation efficiency(99.0%)of bisphenol A compared with Bi2Fe4O9nanosheets(64.2%)under 120 min simulated solar irradiation.This remarkable enhancement can be attributed to the established Bi/Bi2Fe4O9heterojunction structure,which effectively facilitates the separation of photogenerated electron-hole pairs and accelerates interfacial charge transfer between the metallic Bi nanodots and semiconductor Bi2Fe4O9nanosheets.The synergistic effects arising from this unique architecture ultimately lead to superior photocatalytic performance.
摘要为解决TiO_2光催化纳米材料在使用过程中不易回收的问题,采用直接水解法成功制备了磁性核壳结构Fe_3O_4@TiO_2纳米材料,采用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X-射线衍射仪(XRD)、傅里叶变换红外光谱仪(FT-IR)等对其物理化学特性进行了表征,并且考察了制备工艺条件,如钛酸四丁酯(TBOT)用量、氨水用量、反应温度、反应时间等因素对Fe_3O_4@TiO_2纳米颗粒光催化效果的影响。结果表明,TiO_2在Fe_3O_4颗粒表面进行了有效的包覆,形成了良好的包覆层,优化后制备工艺条件为:TBOT用量1.0 m L、氨水用量0.3 m L、制备温度85℃、制备时间4h,所得Fe_3O_4@TiO_2纳米材料对罗丹明B的催化降解效率明显提高,罗丹明B降解率达到98%。对负载前后纳米颗粒的磁滞回线进行测试发现,TiO_2的包覆并未明显减弱Fe_3O_4的磁性,所制备的可回收磁性Fe_3O_4@TiO_2催化剂具有良好的稳定性和重复利用性能。