4.7 Article

Effect of temperature on the adsorption of sulfanilamide onto aluminum oxide and its molecular dynamics simulations

期刊

APPLIED SURFACE SCIENCE
卷 285, 期 -, 页码 403-408

出版社

ELSEVIER
DOI: 10.1016/j.apsusc.2013.08.067

关键词

Sulfanilamide (SA); Aluminum oxide; Adsorption; Temperature; Molecular dynamics simulation

资金

  1. Natural Science Foundation of China [41101287]
  2. Scientific and Technical Supporting Programs of Jiangsu Province [BE2012758]
  3. Science and Technology Project of Construction System of Jiangsu Province [JS2011JH25]
  4. Scientific Innovation Research Programs of College Graduate in Jiangsu Province [CXLX13_388]

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The effect of temperature on the adsorption of sulfanilamide (SA) onto aluminum oxide was researched through batch adsorption experiments, and was then simulated using the molecular dynamics (MD) method. The results show that SA can be adsorbed effectively by the adsorbent of aluminum oxide due to their interactions between SA molecule and the surface of aluminum oxide crystal, and temperature is a key factor which influences the adsorption efficiency obviously. The removal ratio of SA at 298 K is the highest among the selected temperatures (293 K, 298 K, 303 K). MD simulations revealed the interactions between SA molecules and (0 1 2) surface of aluminum oxide crystal at molecular level. The SA molecule has clung to the (0 1 2) face of aluminum oxide crystal, and its structure is deformed during its combining process with the surface. Both binding energies (E-b) and deformation energies (Delta E-deform) in the SA-aluminum oxide system follow the same order as: SA-Al2O3 (298 K) > SA-Al2O3 (293 K) > SA-Al2O3 (303 K). Their deformation energies are far less than their non-bonding energies. Analysis of radial distribution functions (RDFs) indicates that SA can be adsorbed effectively by aluminum oxide crystal mainly through non-bond interactions. The simulation results agree well with the experimental results, which verify the rationality and reliability of the MD simulation. The further MD simulations provide theoretically optimal temperature (301 K) for the adsorption of SA onto aluminum oxide. The molecular dynamics simulation will be useful for better understanding the adsorption mechanism of antibiotics onto metal oxides, which will also be helpful for optimizing experimental conditions to improve the adsorptive removal efficiency of antibiotics. (C) 2013 Elsevier B.V. All rights reserved.

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