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纳米结构的炭钌复合物——一种提高超级电容器性能的电极材料(英文) 被引量:1
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作者 崔光磊 周新红 +2 位作者 智林杰 Arne Thomas klaus müllen 《新型炭材料》 SCIE EI CAS CSCD 北大核心 2007年第4期302-306,共5页
报道了一种利用氧化硅模板,裂解简单易得的含钌有机物制备纳米结构炭/钌复合物的方法。在该复合物中,钌纳米颗粒均匀地分布在多孔的炭基体中。该复合物被电氧化所得炭/RuO.2xH2O的超级电容性质明显提高(10mV/s时229F/g )。
关键词 电极 纳米材料 超级电容器
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Sulfur-doped graphene nanoribbons with a sequence of distinct band gaps 被引量:3
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作者 Yan-Fang Zhang Yi Zhang +11 位作者 Geng Li Jianchen Lu Yande Que Hui Chen Reinhard Berger Xinliang Feng klaus müllen Xiao Lin Yu-Yang Zhang Shixuan Du Sokrates T. Pantelides Hong-Jun Gao 《Nano Research》 SCIE EI CAS CSCD 2017年第10期3377-3384,共8页
Unlike graphene sheets, graphene nanoribbons (GNRs) can exhibit semiconducting band gap characteristics that can be tuned by controlling impurity doping and the GNR widths and edge structures. However, achieving suc... Unlike graphene sheets, graphene nanoribbons (GNRs) can exhibit semiconducting band gap characteristics that can be tuned by controlling impurity doping and the GNR widths and edge structures. However, achieving such control is a major challenge in the fabrication of GNRs. Chevron-type GNRs were recently synthesized via surface-assisted polymerization of pristine or N-substituted oligophenylene monomers. In principle, GNR heterojunctions can be fabricated by mixing two different monomers. In this paper, we report the fabrication and characterization of chevron-type GNRs using sulfur-substituted oligophenylene monomers to produce GNRs and related heterostructures for the first time. First-principles calculations show that the GNR gaps can be tailored by applying different sulfur configurations from cyclodehydrogenated isomers via debromination and intramolecular cyclodehydrogenation. This feature should enable a new approach for the creation of multiple GNR heterojunctions by engineering their sulfur configurations. These predictions have been confirmed via scanning tunneling microscopy and scanning tunneling spectroscopy. For example, we have found that the S-containing GNRs contain segments with distinct band gaps, i.e., a sequence of multiple heterojunctions that results in a sequence of quantum dots. This unusual intraribbon heterojunction sequence may be useful in nanoscale optoelectronic applications that use quantum dots. 展开更多
关键词 bottom-up fabrication chevron-type graphene nanoribbons nanoscale quantum dots scanning tunneling microscopy density functional theory
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On-surface activation of benzylic C-H bonds for the synthesis of pentagon-fused graphene nanoribbons 被引量:1
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作者 Xiushang Xu marco Di Giovannantonio +5 位作者 José I.Urgel Carlo A.Pignedoli Pascal Ruffieux klaus müllen Roman Fasel Akimitsu Narita 《Nano Research》 SCIE EI CSCD 2021年第12期4754-4759,共6页
Graphene nanoribbons (GNRs) have potential for applications in electronic devices. A key issue, thereby, is the fine-tuning of their electronic characteristics, which can be achieved through subtle structural modifica... Graphene nanoribbons (GNRs) have potential for applications in electronic devices. A key issue, thereby, is the fine-tuning of their electronic characteristics, which can be achieved through subtle structural modifications. These are not limited to the conventional armchair, zigzag, and cove edges, but also possible through incorporation of non-hexagonal rings. On-surface synthesis enables the fabrication and visualization of GNRs with atomically precise chemical structures, but strategies for the incorporation of non-hexagonal rings have been underexplored. Herein, we describe the on-surface synthesis of armchair-edged GNRs with incorporated five-membered rings through the C-H activation and cyclization of benzylic methyl groups. Ortho-Tolyl-substituted dibromobianthryl was employed as the precursor monomer, and visualization of the resulting structures after annealing at 300 °C on a gold surface by high-resolution noncontact atomic force microscopy clearly revealed the formation of methylene-bridged pentagons at the GNR edges. These persisted after annealing at 340 °C, along with a few fully conjugated pentagons having singly-hydrogenated apexes. The benzylic methyl groups could also migrate or cleave-off, resulting in defects lacking the five-membered rings. Moreover, unexpected and unique structural rearrangements, including the formation of embedded heptagons, were observed. Despite the coexistence of different reaction pathways that hamper selective synthesis of a uniform structure, our results provide novel insights into on-surface reactions en route to functional, non-benzenoid carbon nanomaterials. 展开更多
关键词 graphene nanoribbons on-surface synthesis scanning-tunneling microscope noncontact atomic force microscope C-H activation
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