We investigated the removal of the organic dye rhodamine B in wastewater with recyclable AgBr/polypyrrole(PPy)nano-photocatalysts.With PPy as an active base for electron transfer,and hexadecyltrimethylammonium bromide...We investigated the removal of the organic dye rhodamine B in wastewater with recyclable AgBr/polypyrrole(PPy)nano-photocatalysts.With PPy as an active base for electron transfer,and hexadecyltrimethylammonium bromide(CTAB)as both the soft-templating agent and the bromine source,a series of AgBr/PPy nano-photocatalysts containing various proportions of silver were prepared in a convenient one-step synthesis procedure.The synthesized catalysts were characterized by TG analysis to reveal that,in comparison with pure PPy,the interaction between PPy and AgBr led to increased thermal stability.Chemical combination of PPy and AgBr was observed through XRD and XPS analyses.For the morphology study,the AgBr particles were found to be well dispersed in the PPy nanowire network from SEM results.In the photodegradation experiments,up to 92%rhodamine B was degraded by the AgBr/PPy catalysts in the period of 1 hour under 254 nm UV light.The catalysts could maintain 60%catalytic efficiency after 3 cycles in the recyclability test.展开更多
将改性磷石膏晶须与高密度聚乙烯(High density polyethylene,HDPE)进行共混,通过注塑成型技术制备HDPE/磷石膏晶须复合材料,采用傅立叶转换红外光谱(FI-IR)、扫描电镜(SEM)、热分析(DSC)等技术,分析改性磷石膏晶须对HDPE复合材料力学...将改性磷石膏晶须与高密度聚乙烯(High density polyethylene,HDPE)进行共混,通过注塑成型技术制备HDPE/磷石膏晶须复合材料,采用傅立叶转换红外光谱(FI-IR)、扫描电镜(SEM)、热分析(DSC)等技术,分析改性磷石膏晶须对HDPE复合材料力学性能的影响。结果表明:改性后HDPE/磷石膏晶须复合材料的冲击强度、拉伸强度和弯曲强度分别为44.33 k J/m2、25.54 MPa和473.5 MPa,与纯HDPE相比,相应提高了31.5%、6.64%和25.15%;与未改性HDPE/磷石膏晶须复合材料相比,冲击强度提高69.13%,拉伸强度与弯曲强度分别降低1.28%和9.65%。故改性后HDPE/磷石膏晶须的综合性能较好。展开更多
采用注射成型法制备无规共聚聚丙烯(PP–R)复合材料,结合差示扫描量热仪、扫描电子显微镜、X射线衍射仪及偏光显微镜等技术,分析了乙烯–辛烯共聚物+高密度聚乙烯增韧剂及WBGⅡ型β成核剂对PP–R复合材料力学性能和结晶行为的影响。结...采用注射成型法制备无规共聚聚丙烯(PP–R)复合材料,结合差示扫描量热仪、扫描电子显微镜、X射线衍射仪及偏光显微镜等技术,分析了乙烯–辛烯共聚物+高密度聚乙烯增韧剂及WBGⅡ型β成核剂对PP–R复合材料力学性能和结晶行为的影响。结果表明,增韧剂与成核剂对复合材料的综合性能有明显的影响,β成核剂和增韧剂同时加入到PP–R材料中,协效提高了复合材料的冲击强度,为78.7 k J/m^2,与纯PP–R材料比较提高了175%,而对拉伸及弯曲强度影响较小。同时,加入增韧剂及成核剂均能诱导α晶向β晶转变,晶粒细化,进而改善其冲击韧性。展开更多
基金Funded by Guizhou Provincial Natural Science Foundation(No.[2020]1Y030)Young Science and Technology Talents of Education Department of Guizhou Province(No.KY[2016]136)+1 种基金Doctoral Start-up Fund by Guizhou Normal University in 2014,The Guizhou Province Science and Technology Planning Project(No.[2016]1100)National Natural Science Foundation of China(No.21764004)。
文摘We investigated the removal of the organic dye rhodamine B in wastewater with recyclable AgBr/polypyrrole(PPy)nano-photocatalysts.With PPy as an active base for electron transfer,and hexadecyltrimethylammonium bromide(CTAB)as both the soft-templating agent and the bromine source,a series of AgBr/PPy nano-photocatalysts containing various proportions of silver were prepared in a convenient one-step synthesis procedure.The synthesized catalysts were characterized by TG analysis to reveal that,in comparison with pure PPy,the interaction between PPy and AgBr led to increased thermal stability.Chemical combination of PPy and AgBr was observed through XRD and XPS analyses.For the morphology study,the AgBr particles were found to be well dispersed in the PPy nanowire network from SEM results.In the photodegradation experiments,up to 92%rhodamine B was degraded by the AgBr/PPy catalysts in the period of 1 hour under 254 nm UV light.The catalysts could maintain 60%catalytic efficiency after 3 cycles in the recyclability test.
文摘将改性磷石膏晶须与高密度聚乙烯(High density polyethylene,HDPE)进行共混,通过注塑成型技术制备HDPE/磷石膏晶须复合材料,采用傅立叶转换红外光谱(FI-IR)、扫描电镜(SEM)、热分析(DSC)等技术,分析改性磷石膏晶须对HDPE复合材料力学性能的影响。结果表明:改性后HDPE/磷石膏晶须复合材料的冲击强度、拉伸强度和弯曲强度分别为44.33 k J/m2、25.54 MPa和473.5 MPa,与纯HDPE相比,相应提高了31.5%、6.64%和25.15%;与未改性HDPE/磷石膏晶须复合材料相比,冲击强度提高69.13%,拉伸强度与弯曲强度分别降低1.28%和9.65%。故改性后HDPE/磷石膏晶须的综合性能较好。
文摘采用注射成型法制备无规共聚聚丙烯(PP–R)复合材料,结合差示扫描量热仪、扫描电子显微镜、X射线衍射仪及偏光显微镜等技术,分析了乙烯–辛烯共聚物+高密度聚乙烯增韧剂及WBGⅡ型β成核剂对PP–R复合材料力学性能和结晶行为的影响。结果表明,增韧剂与成核剂对复合材料的综合性能有明显的影响,β成核剂和增韧剂同时加入到PP–R材料中,协效提高了复合材料的冲击强度,为78.7 k J/m^2,与纯PP–R材料比较提高了175%,而对拉伸及弯曲强度影响较小。同时,加入增韧剂及成核剂均能诱导α晶向β晶转变,晶粒细化,进而改善其冲击韧性。