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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Conductive metal adatoms adsorbed on graphene nanoribbons: a first-principles study of electronic structures, magnetization and transport properties
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Conductive metal adatoms adsorbed on graphene nanoribbons: a first-principles study of electronic structures, magnetization and transport properties

机译:吸附在石墨烯纳米波纹上的导电金属吸附剂:电子结构,磁化和运输性能的一致性研究

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摘要

Using density functional theory (DFT) in combination with non-equilibrium Green's functions, we have investigated the electronic structures, magnetization, and quantum transport properties of zigzag graphene nanoribbons (ZGNRs) functionalized with conventional conductive metal adatoms (Al, Cu, Ag and Au). On the basis of the adsorption energies, our simulation demonstrates that Al and Cu adatoms are chemically bonded with ZGNRs, while the adsorptions for Ag and Au are between weak chemisorption and strong physisorption. The properties of charge transfer and magnetic moment are in reasonable agreement with the previous calculations. The adsorption of metal adatoms induce a net magnetic moment of -1 mu B in 6ZGNR-metal systems. On the other hand, the transport studies of metal adatoms adsorbed ZGNRs suggest that the metal adatoms play an important role in the transport properties of devices and exhibit different effects on the transport properties of 6ZGNR-based and 7ZGNR-based devices. The 7ZGNR-based devices show the opposite conductive order in 6ZGNR-based devices. For 6ZGNR-based devices, the transport current in 6ZGNRs can be enhanced effectively by the adsorption of metal adatoms. However, the currents in 7ZGNR functionalized with conductive metal atoms are obviously smaller than that in pristine 7ZGNR, implying that metal adsorptions reduce the electrical conductivity of 7ZGNR-based devices. In contrast to the properties of the bulk materials, the conductivity of 6ZGNR-Al is highest among 6ZGNR-metal systems, which is in agreement with that of single atomic wires of Ag, Al, Au, and Cu.
机译:使用密度泛函理论(DFT)与非平衡绿色的功能组合,我们研究了用常规导电金属Adatoms(Al,Cu,Ag和Au的Zigzag Graphene Nanoribbons(ZgnR)的电子结构,磁化和量子传输性能(Al,Cu,Ag和Au )。在吸附能量的基础上,我们的模拟表明Al和Cu吸附物与ZgNR化学键合,而Ag和Au的吸附是弱化学吸附和强烈的物理吸附。电荷转移和磁矩的性质与先前的计算合理一致。金属adatoms的吸附诱导6 ZGNR-金属系统中-1μB的净磁矩。另一方面,金属染色体的传输研究吸附的ZGNRS表明金属adatoms在装置的运输性能下发挥着重要作用,并且对基于7ZNR和7ZGNR基装置的运输性能表现出不同的影响。基于7ZGNR的设备在基于6ZGNR的设备中显示了相反的导电顺序。对于基于6GNR的设备,通过吸附金属Adatoms,可以有效地增强6ZGNR中的传输电流。然而,用导电金属原子官能化的7ZGNR中的电流明显小于原始7ZGNR中的电流,这暗示金属吸附降低了基于7ZGNR的装置的电导率。与散装材料的性质相反,6ZGNR-Al的电导率在6 ZgnR-金属系统中是最高的,这与Ag,Al,Au和Cu的单个原子线一致。

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    Northeast Normal Univ Inst Funct Mat Chem Natl &

    Local United Engn Lab Power Battery Key Lab Polyoxometalate Sci Minist Educ Fac Chem Changchun 130024 Peoples R China;

    Huaiyin Normal Univ Sch Chem &

    Chem Engn Jiangsu Prov Key Lab Chem Low Dimens Mat Huaian 223300 Peoples R China;

    Northeast Normal Univ Inst Funct Mat Chem Natl &

    Local United Engn Lab Power Battery Key Lab Polyoxometalate Sci Minist Educ Fac Chem Changchun 130024 Peoples R China;

    Northeast Normal Univ Inst Funct Mat Chem Natl &

    Local United Engn Lab Power Battery Key Lab Polyoxometalate Sci Minist Educ Fac Chem Changchun 130024 Peoples R China;

    Northeast Normal Univ Inst Funct Mat Chem Natl &

    Local United Engn Lab Power Battery Key Lab Polyoxometalate Sci Minist Educ Fac Chem Changchun 130024 Peoples R China;

    Huaiyin Normal Univ Sch Chem &

    Chem Engn Jiangsu Prov Key Lab Chem Low Dimens Mat Huaian 223300 Peoples R China;

    Northeast Normal Univ Inst Funct Mat Chem Natl &

    Local United Engn Lab Power Battery Key Lab Polyoxometalate Sci Minist Educ Fac Chem Changchun 130024 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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