Effects of heteroatoms on the electronic, sensor, and adsorption properties of graphene
- 作者: Amir Aslanzadeh S.1
- 
							隶属关系: 
							- Technical Vocational University
 
- 期: 卷 58, 编号 3 (2017)
- 页面: 479-488
- 栏目: Article
- URL: https://journals.rcsi.science/0022-4766/article/view/161251
- DOI: https://doi.org/10.1134/S0022476617030088
- ID: 161251
如何引用文章
详细
The effects of doping heteroatoms on the structure, electronic and adsorption properties of graphene are investigated using density functional theory calculations. Six different doped graphenes (with Al, B, Si, N, P, and S) are considered, and to obtain the interaction and adsorption properties, three sulfur-containing molecules (H2S, SO2, and thiophene) were interacted with selected graphenes. The adsorption energies (Ead) in the gas phase and solvents show the exothermic interaction for all complexes. The maximum Ead values are observed for aluminum doped graphene (AG) and silicon doped graphene (SiG), and adsorption energies in the solvent are not so different from those in the gas phase. NBO calculations show that the AG and SiG complexes have the highest E(2) interaction energies and simple graphene (G) and nitrogen doped graphene (NG) have the least E(2) energies. Population analyses show that doping heteroatoms change the energy gap. This gap changes more during the interaction and these changes make these structures useful in sensor devices. All calculated data confirm better adsorption of SO2 by graphenes versus H2S and thiophene. Among all graphenes, AG and then SiG are the best adsorbents for these structures.
关键词
作者简介
S. Amir Aslanzadeh
Technical Vocational University
							编辑信件的主要联系方式.
							Email: saeedamiraslanzadeh@hotmail.com
				                					                																			                												                	伊朗伊斯兰共和国, 							Yaftabad, Tehran						
补充文件
 
				
			 
						 
						 
					 
						 
						 
				 
  
  
  
  
  电邮这篇文章
			电邮这篇文章  开放存取
		                                开放存取 ##reader.subscriptionAccessGranted##
						##reader.subscriptionAccessGranted## 订阅存取
		                                		                                        订阅存取
		                                					