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通过组合取代基诱导的对称减小实现四硫富瓦烯电荷转移盐的电子工程。

Electronic engineering of a tetrathiafulvalene charge-transfer salt via reduced symmetry induced by combined substituents.

机构信息

Department of Materials Science and Engineering, Tokyo Institute of Technology, O-okayama 2-12-1, Meguro-ku, Tokyo 152-8552, Japan.

出版信息

Phys Chem Chem Phys. 2019 Oct 16;21(40):22639-22646. doi: 10.1039/c9cp04320a.

DOI:10.1039/c9cp04320a
PMID:31592522
Abstract

A 1 : 1 metallic charge-transfer salt is obtained by cosublimation of (Z,E)-(SMe)2Me2TTF and TCNQ. X-ray diffraction studies confirm the formation of segregated stacks comprising donor and acceptor molecules in (E)-(SMe)2Me2TTF. The crystal packing features lateral SS interactions between TTF stacks, which is in sharp contrast to that in (TTF)(TCNQ). Structural analysis and theoretical studies afford a partial charge-transfer (ρ ≈ 0.52), leading to a system with the electronic structure close to quarter-filled. Resistivity measurements reveal that this material behaves as a metal down to 56 K and 22 K at 1 bar and 14.9 kbar, respectively. The thermopower is negative in the metallic regime, indicating the dominant role of the acceptor stacks for the observed conducting behavior. Analysis of single-crystal EPR spectra shows the remaining spin susceptibility at 4.3 K, suggesting the importance of the Hubbard U correction. These results highlight the judicious engineering of electronic and geometrical effects on the TTF core; the combined use of methyl and thiomethyl groups has decreased the TCNQ bandwidth while maintaining the segregated stacks, converting the metal to insulator (M-I) transition to more 4kF like. In addition, the enhanced SS contacts between the TTF stacks lead to more rapidly decreasing M-I transition temperature under various pressures.

摘要

通过(Z,E)-(SMe)2Me2TTF 和 TCNQ 的共升华,得到了 1:1 的金属电荷转移盐。X 射线衍射研究证实了由给体和受体分子组成的分离堆积的形成(E)-(SMe)2Me2TTF。晶体堆积特征为 TTF 堆积之间的横向 SS 相互作用,这与(TTF)(TCNQ)中的情况形成鲜明对比。结构分析和理论研究提供了部分电荷转移(ρ≈0.52),导致系统具有接近四分之一填充的电子结构。电阻率测量表明,该材料在 1 巴和 14.9 kbar 下分别在 56 K 和 22 K 以下表现为金属。在金属态下,热功率为负,表明观察到的导电行为主要受受体堆积的影响。单晶 EPR 光谱的分析表明在 4.3 K 时仍存在剩余自旋磁化率,表明 Hubbard U 校正的重要性。这些结果突出了对 TTF 核心的电子和几何效应的明智工程设计;使用甲基和硫甲基基团的组合降低了 TCNQ 的带宽,同时保持了分离的堆积,将金属到绝缘体(M-I)转变转变为更类似于 4kF 的转变。此外,TTF 堆积之间增强的 SS 接触导致在各种压力下 M-I 转变温度更快地降低。

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