Oscillation of conductance in molecular junctions of carbon ladder compounds

被引:51
|
作者
Tada, T [1 ]
Nozaki, D [1 ]
Kondo, M [1 ]
Hamayama, S [1 ]
Yoshizawa, K [1 ]
机构
[1] Kyushu Univ, Inst Mat Chem & Engn, Fukuoka 8128581, Japan
关键词
D O I
10.1021/ja031736+
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The electrical conductances of dithiolates of polyacene (PA(n)DTs) and polyphenanthrene (PPh(n)DTs), which are typical carbon ladder compounds, are calculated by means of the Landauer formulation combined with density functional theory, where n is the number of benzene rings involved. Surface Green function used in the Landauer formulation is calculated with the Slater-Koster parameters. Attention is turned to the wire-length dependence of the conductances of PA(n)DTs and PPh(n)DTs. The damping of conductance of PA(n)DTs is much smaller than that of PPh(n)DTs because of the small HOMO-LUMO gaps of PA(n)DTs. PA(n)DTs are thus good molecular wires for nanosized electronic devices. Conductance oscillation is found for both molecular wires when n is less than 7. The electrical conductance is enhanced in PA(n)DTs with even-numbered benzene rings, whereas it is enhanced in PPh(n)DTs with odd-numbered benzene rings. The observed conductance oscillation of PA(n)DTs and PPh(n)DTs is due to the oscillation of orbital energy and electron population. Other pi-conjugated oligomers (polyacetylene-DT, oligo(thiophene)-DT, oligo(meso-meso-linked zinc(II) porphyrin-butadiynylene)-DT, oligo(p-phenylethynylene)-DT, and oligo(p-phenylene)-DT) are also studied. In contrast to PA(n)DTs and PPh(n)DTs, the five molecular wires show ordinary exponential decays of conductance.
引用
收藏
页码:14182 / 14189
页数:8
相关论文
共 50 条
  • [21] High conductance values in π-folded molecular junctions
    Marco Carini
    Marta P. Ruiz
    Imanol Usabiaga
    José A. Fernández
    Emilio J. Cocinero
    Manuel Melle-Franco
    Ismael Diez-Perez
    Aurelio Mateo-Alonso
    Nature Communications, 8
  • [22] Effect of phonons on the ac conductance of molecular junctions
    Ueda, Akiko
    Entin-Wohlman, Ora
    Aharony, Amnon
    NANOSCALE RESEARCH LETTERS, 2011, 6
  • [23] Controlled Hysteresis of Conductance in Molecular Tunneling Junctions
    Park, Junwoo
    Kodaimati, Mohamad S.
    Belding, Lee
    Root, Samuel E.
    Schatz, George C.
    Whitesides, George M.
    ACS NANO, 2022, 16 (03) : 4206 - 4216
  • [24] Spontaneous oscillation of current in fullerene molecular junctions
    Kaun, Chao-Cheng
    Jorn, Ryan
    Seideman, Tamar
    PHYSICAL REVIEW B, 2006, 74 (04)
  • [25] Molecular rectification and conductance switching in carbon-based molecular junctions by structural rearrangement accompanying electron injection
    McCreery, R
    Dieringer, J
    Solak, AO
    Snyder, B
    Nowak, AM
    McGovern, WR
    DuVall, S
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (35) : 10748 - 10758
  • [26] Magnetic field mediated conductance oscillation in graphene p-n junctions
    Cheng, Shu-Guang
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2018, 30 (16)
  • [27] Effect of Mechanical Strain on Electric Conductance of Molecular Junctions
    Inatomi, Junichi
    Fujii, Shintaro
    Marques-Gonzalez, Santiago
    Masai, Hiroshi
    Tsuji, Yasushi
    Terao, Jun
    Kiguchi, Manabu
    JOURNAL OF PHYSICAL CHEMISTRY C, 2015, 119 (33): : 19452 - 19457
  • [28] Conductance saturation in a series of highly transmitting molecular junctions
    Yelin T.
    Korytár R.
    Sukenik N.
    Vardimon R.
    Kumar B.
    Nuckolls C.
    Evers F.
    Tal O.
    Nature Materials, 2016, 15 (4) : 444 - 449
  • [29] Conductance saturation in a series of highly transmitting molecular junctions
    Yelin, T.
    Korytar, R.
    Sukenik, N.
    Vardimon, R.
    Kumar, B.
    Nuckolls, C.
    Evers, F.
    Tal, O.
    NATURE MATERIALS, 2016, 15 (04) : 444 - +
  • [30] Tuning the thermal conductance of molecular junctions with interference effects
    Kloeckner, J. C.
    Cuevas, J. C.
    Pauly, F.
    PHYSICAL REVIEW B, 2017, 96 (24)