An ultra-stable setup for measuring electrical and thermoelectrical properties of nanojunctions

被引:5
|
作者
Popp, Matthias A. [1 ]
Weber, Heiko B. [1 ]
机构
[1] Friedrich Alexander Univ Erlangen Nurnberg, Lehrstuhl Angew Phys, Staudtstr 7, D-91058 Erlangen, Germany
关键词
THERMOPOWER; CONDUCTANCE;
D O I
10.1063/1.5116673
中图分类号
O59 [应用物理学];
学科分类号
摘要
We present a setup that is excellently suited to measure the electrical and thermoelectrical transport across single-molecule junctions at both room temperature and low temperatures. It employs a sandwich configuration of two silicon carbide chips each equipped with metallic electrodes. Upon compression with an external piezo/spring mechanism, fine-tuned displacement control is achieved such that ultrastable atomically thin nanojunctions can be established. As a consequence of its stability, the setup gives access to point-by-point comparisons of electrical and thermoelectrical transport across single-molecule contacts. As a first demonstration of the capabilities of our setup, we present experiments with gold-molecule-gold contacts. Investigating a large ensemble of nanojunctions, each fully characterized by current-voltage characteristics and thermovoltage, correlations between these quantities are uncovered which can be rationalized within the Landauer transport picture. When including characteristics with resonant features, the Seebeck coefficient adds the decisive parameter to fully describe datasets within a resonant tunneling model. The setup provides further potential of controlling additional parameters as it is optically fully transparent. It also allows for nearly arbitrary material combinations for electrode-nanoobject object-electrode nanojunctions.
引用
收藏
页数:5
相关论文
共 50 条
  • [1] The ultra-stable microwave based on ultra-stable laser
    Dai, Shaoyang
    Fang, Fang
    Cao, Shiying
    Liu, Nianfeng
    Li, Tianchu
    AOPC 2017: LASER COMPONENTS, SYSTEMS, AND APPLICATIONS, 2017, 10457
  • [2] The ultra-stable microwave based on ultra-stable laser
    Dai, Shaoyang
    Fang, Fang
    Cao, Shiying
    Liu, Kun
    Liu, Nianfeng
    Chen, Weiliang
    Li, Tianchu
    TENTH INTERNATIONAL CONFERENCE ON INFORMATION OPTICS AND PHOTONICS, 2018, 10964
  • [3] ULTRA-STABLE QUARTZ
    不详
    ELECTRONICS WORLD & WIRELESS WORLD, 1991, 97 (1665): : 547 - 547
  • [4] Characterization of electrical noise limits in ultra-stable laser systems
    Zhang, J.
    Shi, X. H.
    Zeng, X. Y.
    Lu, X. L.
    Deng, K.
    Lu, Z. H.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2016, 87 (12):
  • [5] Compact Ultra-Stable Laser
    Didier, A.
    Millo, J.
    Marechal, B.
    Rocher, C.
    Lacroute, C.
    Ouisse, M.
    Rubiola, E.
    Kersale, Y.
    2017 JOINT CONFERENCE OF THE EUROPEAN FREQUENCY AND TIME FORUM AND IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM (EFTF/IFC), 2017, : 775 - 776
  • [6] MAGMETERS WITH ULTRA-STABLE ZERO
    FATH, JP
    AUSTRALIAN JOURNAL OF INSTRUMENTATION & CONTROL, 1976, 32 (03): : 49 - 53
  • [7] VOLTAGE DIVIDER IS ULTRA-STABLE
    KUZDRALL, JA
    ELECTRONIC DESIGN, 1990, 38 (04) : 139 - 139
  • [8] Ultra-stable spectropolarimeter for dermatology
    Varin, Briseis
    Dellinger, Jean
    Rehbinder, Jean
    Draman, Cemal
    Torzynski, Marc P.
    Heinrich, Christian
    Zallat, Jihad
    ADVANCED BIOMEDICAL AND CLINICAL DIAGNOSTIC AND SURGICAL GUIDANCE SYSTEMS XVIII, 2019, 11229
  • [9] The ultra-stable microwave based on ultra-stable laser with Robustness and Long-Term Stability
    Dai, Shaoyang
    Fang, Fang
    Liu, Kun
    Cao, Shiying
    Liu, Nianfeng
    Chen, Weiliang
    Li, Tianchu
    QUANTUM AND NONLINEAR OPTICS V, 2018, 10825
  • [10] Demonstration of an Ultra-Stable Temperature Platform
    C. J. Green
    D. A. Sergatskov
    R. V. Duncan
    Journal of Low Temperature Physics, 2005, 138 : 871 - 876