通过水热法制备Bi2WO6、热分解法制备α-Fe2O3,并利用机械混合的方式获得α-Fe2O3/Bi2WO6复合材料。利用XRD、UV-Vis、BET、SEM、XPS对样品进行表征,相比Bi2WO6,α-Fe2O3/Bi2WO6复合结构在可见光区域的吸收带变宽。在α-Fe2O3/Bi2WO6+H...通过水热法制备Bi2WO6、热分解法制备α-Fe2O3,并利用机械混合的方式获得α-Fe2O3/Bi2WO6复合材料。利用XRD、UV-Vis、BET、SEM、XPS对样品进行表征,相比Bi2WO6,α-Fe2O3/Bi2WO6复合结构在可见光区域的吸收带变宽。在α-Fe2O3/Bi2WO6+H2O2光催化系统中,紫外光照射30 min MO完全降解;模拟太阳光照射60 min MO降解率达到85%,高于单独的Bi2WO6和α-Fe2O3。优良的光催化活性是由于光生电子从α-Fe2O3的导带迁移到Bi2WO6的导带,有效避免了光生电子-空穴的复合,从而提升了光催化效率;在α-Fe2O3/Bi2WO6+H2O2系统中,H2O2作为电子受体,H2O作为空穴受体,能够产生更多的羟基自由基,促进MO降解。展开更多
High-purity(99%)carbon nanocoils(CNCs)have been synthesized by using porousα-Fe2O3/SnO2 catalyst.The yield of CNCs reaches 9,098%after a 6 h growth.This value is much higher than the previously reported data,indicati...High-purity(99%)carbon nanocoils(CNCs)have been synthesized by using porousα-Fe2O3/SnO2 catalyst.The yield of CNCs reaches 9,098%after a 6 h growth.This value is much higher than the previously reported data,indicating that this method is promising to synthesize high-purity CNCs on a large scale.It is considered that an appropriate proportion of Fe and Sn,proper particle size distribution,and a loose-porous aggregate structure of the catalyst are the key points to the high-purity growth of CNCs.Benefiting from the high-purity preparation,a CNC Buckypaper was successfully prepared and the electrical,mechanical,and electrochemical properties were investigated comprehensively.Furthermore,as one of the practical applications,the CNC Buckypaper was successfully utilized as an efficient adsorbent for the removal of methylene blue dye from wastewater with an adsorption efficiency of 90.9%.This study provides a facile and economical route for preparing high-purity CNCs,which is suitable for large-quantity production.Furthermore,the fabrication of macroscopic CNC Buckypaper provides promising alternative of adsorbent or other practical applications.展开更多
A highly reliable and selective ethanol gas sensor working in realistic environments based on alpha-Fe2O3(α-Fe2O3)nanorhombs is developed. The sensor is fabricated by integrating α-Fe2O3 nanorhombs onto a low power ...A highly reliable and selective ethanol gas sensor working in realistic environments based on alpha-Fe2O3(α-Fe2O3)nanorhombs is developed. The sensor is fabricated by integrating α-Fe2O3 nanorhombs onto a low power microheater based on micro-electro-mechanical systems(MEMS) technology. The α-Fe2O3 nanorhombs, prepared via a solvothermal method, is characterized by transmission electron microscopy(TEM), Raman spectroscopy, x-ray diffraction(XRD), and x-ray photoelectron spectroscopy(XPS). The sensing performances of the α-Fe2O3 sensor to various toxic gases are investigated. The optimum sensing temperature is found to be about 280℃. The sensor shows excellent selectivity to ethanol.For various ethanol concentrations(1 ppm-20 ppm), the response and recovery times are around 3 s and 15 s at the working temperature of 280℃, respectively. Specifically, the α-Fe2O3 sensor exhibits a response shift less than 6% to ethanol at280℃ when the relative humidity(RH) increases from 30% to 70%. The good tolerance to humidity variation makes the sensor suitable for reliable applications in Internet of Things(IoT) in realistic environments. In addition, the sensor shows great long-term repeatability and stability towards ethanol. A possible gas sensing mechanism is proposed.展开更多
文摘通过水热法制备Bi2WO6、热分解法制备α-Fe2O3,并利用机械混合的方式获得α-Fe2O3/Bi2WO6复合材料。利用XRD、UV-Vis、BET、SEM、XPS对样品进行表征,相比Bi2WO6,α-Fe2O3/Bi2WO6复合结构在可见光区域的吸收带变宽。在α-Fe2O3/Bi2WO6+H2O2光催化系统中,紫外光照射30 min MO完全降解;模拟太阳光照射60 min MO降解率达到85%,高于单独的Bi2WO6和α-Fe2O3。优良的光催化活性是由于光生电子从α-Fe2O3的导带迁移到Bi2WO6的导带,有效避免了光生电子-空穴的复合,从而提升了光催化效率;在α-Fe2O3/Bi2WO6+H2O2系统中,H2O2作为电子受体,H2O作为空穴受体,能够产生更多的羟基自由基,促进MO降解。
基金Doctorial Start-up Fund of Guizhou University,the International Cooperation Project of Guizhou Province(2012-7002)Outstanding Young Scientists of Guizhou Province(2009-915)+1 种基金Special Funds for Technological Innovation Team Building of Guizhou Province(2010-4005)National Natural Science Foundation of China(11174132)
基金financially supported by the National Natural Science Foundation of China(Nos.51661145025,51972039,and 51803018)
文摘High-purity(99%)carbon nanocoils(CNCs)have been synthesized by using porousα-Fe2O3/SnO2 catalyst.The yield of CNCs reaches 9,098%after a 6 h growth.This value is much higher than the previously reported data,indicating that this method is promising to synthesize high-purity CNCs on a large scale.It is considered that an appropriate proportion of Fe and Sn,proper particle size distribution,and a loose-porous aggregate structure of the catalyst are the key points to the high-purity growth of CNCs.Benefiting from the high-purity preparation,a CNC Buckypaper was successfully prepared and the electrical,mechanical,and electrochemical properties were investigated comprehensively.Furthermore,as one of the practical applications,the CNC Buckypaper was successfully utilized as an efficient adsorbent for the removal of methylene blue dye from wastewater with an adsorption efficiency of 90.9%.This study provides a facile and economical route for preparing high-purity CNCs,which is suitable for large-quantity production.Furthermore,the fabrication of macroscopic CNC Buckypaper provides promising alternative of adsorbent or other practical applications.
基金Project supported by the Research Foundation of Hangzhou Dianzi University,China2011 Zhejiang Regional Collaborative Innovation Center for Smart City,China
文摘A highly reliable and selective ethanol gas sensor working in realistic environments based on alpha-Fe2O3(α-Fe2O3)nanorhombs is developed. The sensor is fabricated by integrating α-Fe2O3 nanorhombs onto a low power microheater based on micro-electro-mechanical systems(MEMS) technology. The α-Fe2O3 nanorhombs, prepared via a solvothermal method, is characterized by transmission electron microscopy(TEM), Raman spectroscopy, x-ray diffraction(XRD), and x-ray photoelectron spectroscopy(XPS). The sensing performances of the α-Fe2O3 sensor to various toxic gases are investigated. The optimum sensing temperature is found to be about 280℃. The sensor shows excellent selectivity to ethanol.For various ethanol concentrations(1 ppm-20 ppm), the response and recovery times are around 3 s and 15 s at the working temperature of 280℃, respectively. Specifically, the α-Fe2O3 sensor exhibits a response shift less than 6% to ethanol at280℃ when the relative humidity(RH) increases from 30% to 70%. The good tolerance to humidity variation makes the sensor suitable for reliable applications in Internet of Things(IoT) in realistic environments. In addition, the sensor shows great long-term repeatability and stability towards ethanol. A possible gas sensing mechanism is proposed.