Design and Control of Highly Conductive Single-Molecule Junctions: A Focus on the Metal-Molecule Interface
暫譯: 高導電性單分子接頭的設計與控制:聚焦於金屬-分子介面
Kaneko, Satoshi
- 出版商: Springer
- 出版日期: 2018-12-09
- 售價: $4,600
- 貴賓價: 9.5 折 $4,370
- 語言: 英文
- 頁數: 84
- 裝訂: Quality Paper - also called trade paper
- ISBN: 9811351295
- ISBN-13: 9789811351297
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商品描述
This thesis describes improvements to and control of the electrical conductance in single-molecule junctions (SMJs), which have potential applications in molecular electronics, with a focus on the bonding between the metal and molecule. In order to improve the electrical conductance, the π orbital of the molecule is directly bonded to the metal orbital, because anchoring groups, which were typically used in other studies to bind molecule with metal electrodes, became resistive spacers. Using this direct π-binding, the author has successfully demonstrated highly conductive SMJs involving benzene, endohedral metallofullerene Ce@C82, and nitrogen. Subsequently, the author investigated control of the electrical conductance of SMJs using pyrazine. The nitrogen atom in the π-conjugated system of pyrazine was expected to function as an anchoring point, and two bonding states were expected. One originates primarily from the π orbital, while the other originates primarily from an n state of the nitrogen. Measurements of conductance and dI/dV spectra coupled with theoretical calculations revealed that the pyrazine SMJ has bistable conductance states, in which the pyrazine axis is either tilted or parallel with respect to the junction axis. The bistable states were switched by changing the gap size between the metal electrodes using an external force. Notably, it is difficult to change the electrical properties of bulk-state materials using mechanical force. The findings reveal that the electron transport properties of a SMJ can be controlled by designing a proper metal-molecule interface, which has considerable potential for molecular electronics. Moreover, this thesis will serve as a guideline for every step of SMJ research: design, fabrication, evaluation, and control.
商品描述(中文翻譯)
本論文描述了對單分子接點(SMJs)中電導率的改善與控制,這在分子電子學中具有潛在應用,重點在於金屬與分子之間的鍵結。為了提高電導率,分子的π軌道直接與金屬軌道鍵結,因為在其他研究中通常用來將分子與金屬電極結合的錨定基團,變成了具有電阻的間隔物。透過這種直接的π鍵結,作者成功展示了涉及苯、內包金屬富勒烯Ce@C82和氮的高導電性SMJs。隨後,作者研究了使用吡嗪控制SMJs的電導率。吡嗪的π共軛系統中的氮原子預期作為錨定點,並預期有兩種鍵結狀態。一種主要來自π軌道,而另一種主要來自氮的n態。電導率和dI/dV光譜的測量結合理論計算顯示,吡嗪SMJ具有雙穩態電導,吡嗪軸相對於接點軸要麼傾斜,要麼平行。這些雙穩態是通過使用外力改變金屬電極之間的間隙大小來切換的。值得注意的是,使用機械力改變塊狀材料的電性特性是困難的。研究結果顯示,通過設計適當的金屬-分子界面,可以控制SMJ的電子傳輸特性,這對於分子電子學具有相當大的潛力。此外,本論文將作為SMJ研究每一步的指導方針:設計、製造、評估和控制。