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基于纳米石墨烯的主客体系统的非常规电子和磁功能。

Unconventional electronic and magnetic functions of nanographene-based host-guest systems.

作者信息

Enoki Toshiaki, Takai Kazuyuki

机构信息

Department of Chemistry, Tokyo Institute of Technology, 2-12-1/W4-1 Ookayama, Meguro-ku, Tokyo 152-8551, Japan.

出版信息

Dalton Trans. 2008 Aug 7(29):3773-81. doi: 10.1039/b800138n. Epub 2008 Jun 13.

Abstract

Nanographene has a unique electronic structure which critically depends on the shape of its edge. A zigzag-edged nanographene sheet has a non-bonding pi-electron state (edge state), yielding a strong spin magnetism for edge-state localized spins, in spite of the absence of such a state in an armchair-edged nanographene sheet. Nanographite (stacked nanographene sheets)-network-based nanoporous carbon is employed as the host material to build unconventional magnetic systems based on the host-guest interaction. The physisorption of various guest materials can cause a reversible low-spin/high-spin magnetic switching phenomenon, whose feature varies depending on the type of guest species. The edge-state spins are utilized as a probe to detect a huge condensation of helium atoms in the nanopores. The giant magnetoresistance of the nanographite network is controlled by the physisorption of magnetic oxygen molecules. The confinement of potassium clusters in the nanopores surrounded by nanographite domains yields an interesting nanomagnetic state. Nanographene/nanographite is an intriguing pi-electron-based nanocarbon material with the potential of producing unconventional magnetic structures that cannot be obtained using bulk graphite. The processability of nanographene/nanographite is expected to give a variety of magnetic functions for spintronic applications.

摘要

纳米石墨烯具有独特的电子结构,这主要取决于其边缘形状。锯齿状边缘的纳米石墨烯片具有非键合π电子态(边缘态),尽管扶手椅状边缘的纳米石墨烯片中不存在这种状态,但这种状态会为边缘态局域自旋产生强自旋磁性。基于纳米石墨(堆叠的纳米石墨烯片)网络的纳米多孔碳被用作主体材料,以构建基于主客体相互作用的非常规磁性系统。各种客体材料的物理吸附会导致可逆的低自旋/高自旋磁开关现象,其特征因客体物种的类型而异。边缘态自旋被用作探针来检测纳米孔中氦原子的巨大凝聚。纳米石墨网络的巨磁电阻由磁性氧分子的物理吸附控制。钾团簇在被纳米石墨域包围的纳米孔中的限制产生了一种有趣的纳米磁态。纳米石墨烯/纳米石墨是一种有趣的基于π电子的纳米碳材料,具有产生使用块状石墨无法获得的非常规磁性结构的潜力。预计纳米石墨烯/纳米石墨的可加工性将为自旋电子学应用提供各种磁功能。

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