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First principles study of magnetism in nanographenes

机译:纳米石墨烯中磁性的第一性原理研究

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Magnetism in nanographenes [also known as polycyclic aromatic hydrocarbons (PAHs)] is studied with first principles density functional calculations. We find that an antiferromagnetic (AFM) phase appears as the PAH reaches a certain size. This AFM phase in PAHs has the same origin as the one in infinitely long zigzag-edged graphene nanoribbons, namely, from the localized electronic state at the zigzag edge. The smallest PAH still having an AFM ground state is identified. With increased length of the zigzag edge, PAHs approach an infinitely long ribbon in terms of (1) the energetic ordering and difference among the AFM, ferromagnetic, and nonmagnetic phases and (2) the average local magnetic moment at the zigzag edges. These PAHs serve as ideal targets for chemical synthesis of nanographenes that possess magnetic properties. Moreover, our calculations support the interpretation that experimentally observed magnetism in activated carbon fibers originates from the zigzag edges of the nanographenes. (C) 2007 American Institute of Physics.
机译:用第一原理密度泛函计算研究了纳米石墨烯中的磁性[也称为多环芳烃(PAHs)]。我们发现,当PAH达到一定大小时,就会出现反铁磁(AFM)相。 PAHs中的这一AFM相与无限长之字形边缘的石墨烯纳米带的起源相同,即源自之字形边缘的局部电子态。确定仍具有AFM基态的最小PAH。随着之字形边缘长度的增加,就(1)AFM,铁磁和非磁性相之间的能级排序和差异以及(2)之字形边缘处的平均局部磁矩而言,多环芳烃接近无限长的带。这些多环芳烃是化学合成具有磁性的纳米石墨烯的理想靶标。此外,我们的计算支持以下解释:在实验中观察到的活性炭纤维中的磁性源自纳米石墨烯的锯齿形边缘。 (C)2007美国物理研究所。

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