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Magnetic biochar combining adsorption and separation recycle for removal of chromium in aqueous solution

机译:结合吸附和分离再循环的磁性生物炭,以除去水溶液中铬

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Biochar has been developed in recent years for the removal of contaminants such as Cr (VI) in water. The enhancement of the adsorption capacity of biochar and its recyclable use are still challenges. In this study, magnetic biochar derived from corncobs and peanut hulls was synthesized under different pyrolysis temperatures after pretreating the biomass with a low concentration of 0.5 M FeCl3 solution. The morphology, specific surface area, saturation magnetization and Fourier transform infrared spectroscopy (FT-IR) spectra were characterized for biochar. The magnetic biochar performed well in combining adsorption and separation recycle for the removal of Cr (VI) in water. The Cr (VI) adsorbance of the biochar was increased with the increase in pyrolysis temperature, and the magnetic biochar derived from corncobs showed better performance for both magnetization and removal of Cr (VI) than that from peanut hulls. The Langmuir model was used for the isothermal adsorption and the maximum Cr (VI) adsorption capacity of corncob magnetic biochar pyrolyzed at 650 degrees C reached 61.97 mg/g. An alkaline solution (0.1 M NaOH) favored the desorption of Cr (VI) from the magnetic biochar, and the removal of Cr (VI) still remained around 77.6% after four cycles of adsorption-desorption. The results showed that corncob derived magnetic biochar is a potentially efficient and recoverable adsorbent for remediation of heavy metals in water.
机译:近年来,生物炭已经开发,用于去除水中的污染物如Cr(vi)。增强生物炭的吸附能力及其可回收利用仍然挑战。在该研究中,在预处理低浓度为0.5MFECL3溶液的情况下,在不同的热解温度下合成源自玉米芯和花生船体的磁性生物BiOch。形态学,比表面积,饱和磁化和傅立叶变换红外光谱(FT-IR)光谱的特征在于生物炭。在组合吸附和分离回收中,磁性生物炭均良好地在水中除去Cr(VI)。随着热解温的增加,Biochar的Cr(VI)的吸附量增加,源自玉米芯的磁性生物BiOch炭表现出比来自花生船体的磁化和去除Cr(vi)的磁化和去除性能更好。 Langmuir模型用于等温吸附和玉米浦磁性生物炭的最大Cr(VI)吸附能力在650℃下热解达到61.97mg / g。碱溶液(0.1M NaOH)赞成来自磁性生物炭的Cr(VI)的解吸,并且在吸附 - 解吸四个循环后,将Cr(VI)的除去仍保持约77.6%。结果表明,玉米浦衍生的磁性生物炭是一种潜在有效且可回收的吸附剂,用于修复水中的重金属。

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