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不同改性方法对酒糟生物炭理化性质及其吸附能力的影响
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作者 夏红霞 夏洋漪 朱启红 《化学研究与应用》 CAS 北大核心 2023年第10期2394-2401,共8页
本文以酒糟生物炭为供试材料,比较研究了化学活化改性法(HNO_(3)、NaOH和H_(2)O_(2))、有机改性法(海藻酸钠和柠檬酸)以及金属盐或金属氧化物改性法(FeCl_(3)和Fe_(2)O_(3))对酒糟生物炭理化性质及其吸附性能的影响,为制备高吸附性能生... 本文以酒糟生物炭为供试材料,比较研究了化学活化改性法(HNO_(3)、NaOH和H_(2)O_(2))、有机改性法(海藻酸钠和柠檬酸)以及金属盐或金属氧化物改性法(FeCl_(3)和Fe_(2)O_(3))对酒糟生物炭理化性质及其吸附性能的影响,为制备高吸附性能生物炭提供理论依据。实验结果表明:(1)不同改性方法对酒糟生物炭吸附Cd(Ⅱ)能力影响较大。吸附实验结果显示,FeCl_(3)改性(C_1)显著降低酒糟生物炭的吸附能力,其他改性方法均提高生物炭的吸附能力。选取三类改性方法中吸附作用最好的一种进行比较,其中Fe_(2)O_(3)改性碳(C_(2))对Cd(Ⅱ)的吸附作用最强,H_(2)O_(2)改性炭(A_(3))次之,柠檬酸改性炭(B_(2))效果最差,三种改性生物炭与对照相比分别提高了30.45%、13.49%和10.4%。(2)生物炭结构表征结果显示,Fe_(2)O_(3)改性生物炭比表面积达134.88 m^(2)/g、粒径分布1.9-115 nm、中值粒径达3.82nm、Zeta电位绝对值为45.9 mV,均显著高于其他改性生物炭;且Fe_(2)O_(3)改性生物炭Fe-O官能团与含氧官能团数目增加也高于其他改性生物炭。由此表明,Fe_(2)O_(3)改性更能改善酒糟生物炭理化性质,进一步提高酒糟生物炭对Cd(Ⅱ)的吸附能力。 展开更多
关键词 酒糟 生物炭 改性 理化性质 吸附 Cd(Ⅱ)
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In-situ polymerization for PPy/g-C_3N_4 composites with enhanced visible light photocatalytic performance 被引量:4
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作者 Hongju Han Min Fu +3 位作者 Yalin Li Wei Guan Peng Lu Xueli Hu 《Chinese Journal of Catalysis》 SCIE EI CAS CSCD 北大核心 2018年第4期831-840,共10页
Polypyrrole‐modified graphitic carbon nitride composites(PPy/g‐C3N4)are fabricated using an in‐situ polymerization method to improve the visible light photocatalytic activity of g‐C3N4.The PPy/g‐C3N4 is applied t... Polypyrrole‐modified graphitic carbon nitride composites(PPy/g‐C3N4)are fabricated using an in‐situ polymerization method to improve the visible light photocatalytic activity of g‐C3N4.The PPy/g‐C3N4 is applied to the photocatalytic degradation of methylene blue(MB)under visible light irradiation.Various characterization techniques are employed to investigate the relationship between the structural properties and photoactivities of the as‐prepared composites.Results show that the specific surface area of the PPy/g‐C3N4 composites increases upon assembly of the amorphous PPy nanoparticles on the g‐C3N4 surface.Owing to the strong conductivity,the PPy can be used as a transition channel for electrons to move onto the g‐C3N4 surface,thus inhibiting the recombination of photogenerated carriers of g‐C3N4 and improving the photocatalytic performance.The elevated light adsorption of PPy/g‐C3N4 composites is attributed to the strong absorption coefficient of PPy.The composite containing 0.75 wt%PPy exhibits a photocatalytic efficiency that is 3 times higher than that of g‐C3N4 in 2 h.Moreover,the degradation kinetics follow a pseudo‐first‐order model.A detailed photocatalytic mechanism is proposed with·OH and·O2-radicals as the main reactive species.The present work provides new insights into the mechanistic understanding of PPy in PPy/g‐C3N4 composites for environmental applications. 展开更多
关键词 PPy/g‐C3N4 composites In‐situ polymerization Visible light photocatalysis Mechanism Environmental remediation
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