Although room-temperature superconductivity is still difficult to achieve,researching materials with electrical conductivity significantly higher than that of copper will be of great importance in improving energy eff...Although room-temperature superconductivity is still difficult to achieve,researching materials with electrical conductivity significantly higher than that of copper will be of great importance in improving energy efficiency,reducing costs,lightening equipment weight,and enhancing overall performance.Herein,this study presents a novel copper-carbon nanofilm composite with enhanced conductivity which has great applications in the electronic devices and electrical equipment.Multilayer copper-carbon nanofilms and interfaces with superior electronic structures are formed based on copper materials using plasma immersion nanocarbon layer deposition technology,effectively enhancing conductivity.Experimental results show that for a five-layer copper-carbon nanofilm composite,the conductivity improves significantly when the thickness of the carbon nanofilm increases.When the carbon nanofilm accounts for 16%of the total thickness,the overall conductivity increases up to 30.20%compared to pure copper.The mechanism of the enhanced conductivity is analyzed including roles of copper atom adsorption sites and electron migration pathways by applying effective medium theory,first-principles calculations and density of states analysis.Under an applied electric field,the high-density electrons in the copper film can migrate into the nanocarbon film,forming highly efficient electron transport channels,which significantly enhance the material’s conductivity.Finally,large-area electrode coating equipment is developed based on this study,providing the novel and robust strategy to enhance the conductivity of copper materials,which enables industrial application of copper-carbon nanocomposite films in the field of high conductivity materials.展开更多
The three-dimensional particle electrode system exhibits significant potential for application in the treatment of wastewater.Nonetheless,the advancement of effective granular electrodes characterized by elevated cata...The three-dimensional particle electrode system exhibits significant potential for application in the treatment of wastewater.Nonetheless,the advancement of effective granular electrodes characterized by elevated catalytic activity and minimal energy consumption continues to pose a significant challenge.In this research,Fluorine-doped copper-carbon(F/Cu-GAC)particle electrodes were effectively synthesized through an impregnationcalcination technique,utilizing granular activated carbon as the carrier and fluorinedoped modified copper oxides as the catalytic agents.The particle electrodes were subsequently utilized to promote the degradation of 2,4,6-trichlorophenol(2,4,6-TCP)in a threedimensional electrocatalytic reactor(3DER).The F/Cu-GAC particle electrodes were polarized under the action of electric field,which promoted the heterogeneous Fenton-like reaction in which H2O2 generated by two-electron oxygen reduction reaction(2e-ORR)of O_(2) was catalytically decomposed to·OH.The 3DER equipped with F/Cu-GAC particle electrodes showed 100%removal of 2,4,6-TCP and 79.24%removal of TOC with a specific energy consumption(EC)of approximately 0.019 kWh/g·COD after 2 h of operation.The F/Cu-GAC particle electrodes exhibited an overpotential of 0.38 V and an electrochemically active surface area(ECSA)of 715 cm^(2),as determined through linear sweep voltammetry(LSV)and cyclic voltammetry(CV)assessments.These findings suggest a high level of electrocatalytic performance.Furthermore,the catalytic mechanism of the 3DER equipped with F/Cu-GAC particle electrodes was elucidated through the application of X-ray photoelectron spectroscopy(XPS),electron spin resonance(ESR),and active species capture experiments.This investigation offers a novel approach for the effective degradation of 2,4,6-TCP.展开更多
Malignant tumors pose a significant threat to human life and health.Among these,lung cancer has become one of the most prevalent and lethal forms.The emerging in-situ catalytic Fenton reaction,which generates toxic hy...Malignant tumors pose a significant threat to human life and health.Among these,lung cancer has become one of the most prevalent and lethal forms.The emerging in-situ catalytic Fenton reaction,which generates toxic hydroxyl radical(·OH),has shown great potential in the field of nanozyme treatment.However,there are a few problems that make it difficult to use it in practice.Firstly,the typical iron-based Fenton catalysts have a narrow working pH range.The efficiency of the Fenton reaction has been strictly limited by the concentration of hydrogen peroxide(H_(2)O_(2))in the tumor microenvironment.Besides,reduced glutathione(GSH)is overexpressed in most tumor cells,which can scavenge highly active·OH,thus enhancing the oxidation resistance capability.In view of this,we put forward the strategy of fabricating a novel copper-carbon aerogel(Cu-CA)nanozyme with good biocompatibility via a facile one-step method for parallel catalysis which could simultaneously lower GSH level and facilitate the generation of·OH.Both the structure information and anti-tumor activity of Cu-CA were preliminarily assessed in vitro.In general,this work provides new insight on the rational design of carbon aerogel-based nanozyme for potential tumor catalytic therapy.展开更多
基金support from the National Natural Science Foundation of China(61574091)National Natural Science Foundation of China Key Program(50730008).
文摘Although room-temperature superconductivity is still difficult to achieve,researching materials with electrical conductivity significantly higher than that of copper will be of great importance in improving energy efficiency,reducing costs,lightening equipment weight,and enhancing overall performance.Herein,this study presents a novel copper-carbon nanofilm composite with enhanced conductivity which has great applications in the electronic devices and electrical equipment.Multilayer copper-carbon nanofilms and interfaces with superior electronic structures are formed based on copper materials using plasma immersion nanocarbon layer deposition technology,effectively enhancing conductivity.Experimental results show that for a five-layer copper-carbon nanofilm composite,the conductivity improves significantly when the thickness of the carbon nanofilm increases.When the carbon nanofilm accounts for 16%of the total thickness,the overall conductivity increases up to 30.20%compared to pure copper.The mechanism of the enhanced conductivity is analyzed including roles of copper atom adsorption sites and electron migration pathways by applying effective medium theory,first-principles calculations and density of states analysis.Under an applied electric field,the high-density electrons in the copper film can migrate into the nanocarbon film,forming highly efficient electron transport channels,which significantly enhance the material’s conductivity.Finally,large-area electrode coating equipment is developed based on this study,providing the novel and robust strategy to enhance the conductivity of copper materials,which enables industrial application of copper-carbon nanocomposite films in the field of high conductivity materials.
基金supported by Guangxi Science and Technology Major Program(No.AA23073008)Hubei Key Laboratory of Water System Science for Sponge City Construction(Wuhan University)(No.2023–05)Nanning Innovation and Entrepreneur Leading Talent Project(No.2021001).
文摘The three-dimensional particle electrode system exhibits significant potential for application in the treatment of wastewater.Nonetheless,the advancement of effective granular electrodes characterized by elevated catalytic activity and minimal energy consumption continues to pose a significant challenge.In this research,Fluorine-doped copper-carbon(F/Cu-GAC)particle electrodes were effectively synthesized through an impregnationcalcination technique,utilizing granular activated carbon as the carrier and fluorinedoped modified copper oxides as the catalytic agents.The particle electrodes were subsequently utilized to promote the degradation of 2,4,6-trichlorophenol(2,4,6-TCP)in a threedimensional electrocatalytic reactor(3DER).The F/Cu-GAC particle electrodes were polarized under the action of electric field,which promoted the heterogeneous Fenton-like reaction in which H2O2 generated by two-electron oxygen reduction reaction(2e-ORR)of O_(2) was catalytically decomposed to·OH.The 3DER equipped with F/Cu-GAC particle electrodes showed 100%removal of 2,4,6-TCP and 79.24%removal of TOC with a specific energy consumption(EC)of approximately 0.019 kWh/g·COD after 2 h of operation.The F/Cu-GAC particle electrodes exhibited an overpotential of 0.38 V and an electrochemically active surface area(ECSA)of 715 cm^(2),as determined through linear sweep voltammetry(LSV)and cyclic voltammetry(CV)assessments.These findings suggest a high level of electrocatalytic performance.Furthermore,the catalytic mechanism of the 3DER equipped with F/Cu-GAC particle electrodes was elucidated through the application of X-ray photoelectron spectroscopy(XPS),electron spin resonance(ESR),and active species capture experiments.This investigation offers a novel approach for the effective degradation of 2,4,6-TCP.
基金financially supported by the Tongji University Medicine-X Interdisciplinary Research Initiative(No.2025-0313-ZD-02)。
文摘Malignant tumors pose a significant threat to human life and health.Among these,lung cancer has become one of the most prevalent and lethal forms.The emerging in-situ catalytic Fenton reaction,which generates toxic hydroxyl radical(·OH),has shown great potential in the field of nanozyme treatment.However,there are a few problems that make it difficult to use it in practice.Firstly,the typical iron-based Fenton catalysts have a narrow working pH range.The efficiency of the Fenton reaction has been strictly limited by the concentration of hydrogen peroxide(H_(2)O_(2))in the tumor microenvironment.Besides,reduced glutathione(GSH)is overexpressed in most tumor cells,which can scavenge highly active·OH,thus enhancing the oxidation resistance capability.In view of this,we put forward the strategy of fabricating a novel copper-carbon aerogel(Cu-CA)nanozyme with good biocompatibility via a facile one-step method for parallel catalysis which could simultaneously lower GSH level and facilitate the generation of·OH.Both the structure information and anti-tumor activity of Cu-CA were preliminarily assessed in vitro.In general,this work provides new insight on the rational design of carbon aerogel-based nanozyme for potential tumor catalytic therapy.