DFT investigation for the adsorption of acrolein onto the surface of pristine and doped C70: NBO and QTAIM analyses

被引:5
|
作者
Kadhim, Mustafa M. [1 ]
Waleed, Ibraheem [2 ]
Abed, Zainab Talib [3 ]
Hachim, Safa K. [4 ,5 ]
Abdullaha, Sallal A. H. [6 ]
Rheima, Ahmed Mahdi [7 ]
机构
[1] Kut Univ Coll, Dept Dent, Kut 52001, Wasit, Iraq
[2] Al Farahidi Univ, Med Lab Tech Dept, Baghdad 10022, Iraq
[3] Univ Mashreq, Coll Pharm, Baghdad 10021, Iraq
[4] Islamic Univ, Coll Tech Engn, Najaf, Iraq
[5] Al Turath Univ Coll, Med Lab Tech Dept, Baghdad, Iraq
[6] Dijlah Univ Coll, Baghdad 10022, Iraq
[7] Mustansiriyah Univ, Coll Sci, Dept Chem, Baghdad, Iraq
关键词
Fullerene; Environment; Density functional theory; Sensor; FIELD-EMISSION PROPERTIES; ELECTRONIC-PROPERTIES; NANOSIZED TUBE; NITROUS-OXIDE; BN NANOSHEET; AL; NANOTUBES; NANOCONES; BEHAVIOR; PYRAZINAMIDE;
D O I
10.1016/j.comptc.2022.113983
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Density functional theory was used in the present study to compare the sensitivity and reactivity of pristine and doped fullerene C70 variants (including Al and Si) to the acrolein (AC) molecule. It was determined that the Ohead of AC is responsible for its physisorption onto the C70. The adsorption's energy was close to -3.11 kcal/mol. During adsorption, the associated cluster's electrical conductivity remained nearly unaltered. Al and Si atoms that replace C atoms in fullerene increase their activity. Si had an estimated adsorption energy of -28.23 kcal/ mol, whereas Al was expected to have a value of -48.95 kcal/mol. The LUMO-HOMO energy gap appears to impact the AC molecule significantly. The stability of LUMOs in Si-doped fullerene was dramatically reduced by AC adsorption, whereas its electrical conductivity was increased. Simultaneously, electrical signals linked to the existence of AC in the environment were created. The outcomes demonstrated the high reliability of Si-doped fullerene as a AC electronic sensor. Al-doped fullerene is an CYRILLIC CAPITAL LETTER EF-type candidate to be utilized as a AC sensor due to the significant effects of the AC on its Fermi level and functions. The stable site of the AC/Al-fullerene complex showed a maximum peak at 784 nm, following the results of the time-dependent density functional theory (TD-DFT).
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页数:9
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