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Ultrasonic enhanced adsorption of methylene blue onto the optimized surface area of activated carbon: Adsorption isotherm, kinetics and thermodynamics

机译:超声波增强亚甲基的吸附在活性炭的优化表面积上:吸附等温线,动力学和热力学

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摘要

In this study, the influence of pyrolysis time and temperature on yield, fixed carbon and physicochemical properties of the biochar produced from Empty Fruit Bunch (EFB) were investigated. Response Surface Methodology was utilized to optimize the influence of process parameters on the surface area of activated carbon produced from the biochar in the absence and presence of ultrasonication and was coded EFB-AC and EFB-UAC respectively. The EFB-AC and EFB-UAC were characterized using BET, TGA, HRSEM, XRD, FTIR and XPS. The batch adsorption behavior of MB onto EFB-AC and EFB-UAC was evaluated. The results revealed that the optimum surface area (S-BET) of 2114 m(2)/g was achieved for EFB-UAC at activation temperature (600 degrees C), activation time (45 min) and KOH concentration (1.5 M). It was found that EFB-UAC has high surface area, better thermal stability, better pores development and improved surface chemistry compared to the EFB-AC. The maximum adsorption of MB occurred at pH (10), adsorbent dosage (30 mg), contact time (40 min), Temperature (50 degrees C) and MB initial concentration (50 mg/L). The experimental data was best described by Langmuir isotherm model, having an adsorption capacity of 400 mg/g and 435 mg/g for EFB-AC and EFB-UAC, respectively. The kinetic model was best suited by pseudo-second order model for MB adsorption onto EFB-AC and EFB-UAC. The thermodynamics investigation showed that adsorption of MB was endothermic in nature due to strong electrostatic interaction and formation of hydrogen bonding. The study revealed that ultrasonic assisted variations of the adsorption parameters significantly improved the adsorption of MB onto EFB-AC and EFB-UAC. (C) 2019 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:在本研究中,研究了从空果束(EFB)产生的生物炭的产率,固定碳和物理化学性质的影响。响应面方法用于优化在缺乏和存在超声的生物炭地产生的活性炭表面面积对从生物炭产生的活性炭表面区域的影响,分别编码EFB-AC和EFB-UAC。使用BET,TGA,HRSEM,XRD,FTIR和XPS表征EFB-AC和EFB-UAC。评估MB在EFB-AC和EFB-UAC上的批量吸附行为。结果表明,在活化温度(600℃),活化时间(45分钟)和KOH浓度(1.5μm),在EFB-UAC中实现2114m(2)/ g的最佳表面积(S-BET)。结果发现,与EFB-AC相比,EFB-UAC具有高表面积,更好的热稳定性,更好的孔隙发育和改善的表面化学。 Mb的最大吸附在pH(10),吸附剂剂量(30mg),接触时间(40分钟),温度(50℃)和MB初始浓度(50mg / L)时。实验数据是由Langmuir等温模型最佳描述的,其吸附容量为400mg / g和435mg / g,分别用于EFB-AC和EFB-UAC。动力学模型最适合于伪二次阶模型,用于将MB吸附到EFB-AC和EFB-UAC上。热力学研究表明,由于强的静电相互作用和氢键形成,Mb的吸附性在自然中。该研究表明,吸附参数的超声波辅助变化显着改善了Mb对EFB-AC和EFB-UAC的吸附。 (c)2019化学工程师机构。 elsevier b.v出版。保留所有权利。

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