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对超声和热生成的活性炭黑微观结构进行扫描电子显微镜(SEM)、X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)分析。

SEM, XRD and FTIR analyses of both ultrasonic and heat generated activated carbon black microstructures.

作者信息

Wibawa Pratama Jujur, Nur Muhammad, Asy'ari Mukhamad, Nur Hadi

机构信息

Department of Chemistry, Faculty of Sciences and Mathematics Diponegoro University, Jalan Prof. H. Soedarto, SH. No.1 Tembalang, Semarang, Indonesia.

Center for Plasma Research, Department of Physics, Faculty of Sciences and Mathematics Diponegoro University, Jalan Prof. H. Soedarto, SH. No.1 Tembalang, Semarang, Indonesia.

出版信息

Heliyon. 2020 Mar 12;6(3):e03546. doi: 10.1016/j.heliyon.2020.e03546. eCollection 2020 Mar.

Abstract

The microstructures of the activated carbon black microparticles (ACBMPs) generated through both treatments of 20 min ultrasonic and 400 °C thermal energy equivalent have been analyzed properly using scanning electron microscope (SEM), X-ray diffraction (XRD) and Fourier-transformed infrared (FTIR) spectroscopy methods. The research was aiming to generate binding or active sites points on the outer surface of the ACBMPs body of which commonly plays an important role in both adsorption and catalytic processes. It was observed that around 150 nm up to 400 nm in average diameter super macro voids with many various turns of nano-scale wells, and around 1.84 angstrom (Å) up to 15.98 Å intraparticle pores were generated. In addition, the parallel planes spacing of the carbonaceous framework sheets, namely in Miller indexes terminology, of about 4.44 Å up to 2.98 Å constructed the inner particles of the ACBMPs body. A new nomenclature method for the binding or active site shapes identification and classifying them into four categories based on the quadrants terminology, . quadrant one (Q1), two (Q2), three (Q3) and four (Q4) is proposed. Each the quadrants contains four categories of turns types, . sharp, semi sharp, obtuse and non-significant turns depending on the angle of the associated turn in radian angle, θ. Finally, it can be concluded that the combination of ultrasonic and thermal energy treatments in fabricating ACBMPs could generate binding or active site points with unique shapes as a transit terminal for any guest molecules, in this context is methyl red (MR) molecules to enter into the suitable intra-particles pores of the ACBMPs body.

摘要

通过20分钟超声处理和400℃热能等效处理产生的活性炭黑微粒(ACBMPs)的微观结构,已使用扫描电子显微镜(SEM)、X射线衍射(XRD)和傅里叶变换红外(FTIR)光谱法进行了适当分析。该研究旨在在ACBMPs主体的外表面上产生结合位点或活性位点,这在吸附和催化过程中通常起着重要作用。观察到平均直径在150纳米至400纳米之间有许多不同匝数的纳米级孔的超大宏观孔隙,以及在1.84埃(Å)至15.98 Å之间的颗粒内孔隙。此外,碳质骨架片层的平行平面间距,即在米勒指数术语中,约4.44 Å至2.98 Å构成了ACBMPs主体的内部颗粒。提出了一种新的命名方法,用于识别结合位点或活性位点的形状,并根据象限术语将它们分为四类,即第一象限(Q1)、第二象限(Q2)、第三象限(Q3)和第四象限(Q4)。每个象限包含四类转弯类型,即尖锐、半尖锐、钝角和不显著转弯,这取决于相关转弯的弧度角θ。最后,可以得出结论,在制造ACBMPs时,超声和热能处理的组合可以产生具有独特形状的结合位点或活性位点,作为任何客体分子(在这种情况下是甲基红(MR)分子)进入ACBMPs主体合适颗粒内孔隙的转运终端。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6236/7068104/e2995e79f8dc/gr1.jpg

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