4.8 Article

Space Charge-Limited Current Transport Mechanism in Crossbar Junction Embedding Molecular Spin Crossovers

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 28, Pages 31696-31705

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c07445

Keywords

spin crossover; transport measurements; hybrid device; FIB-STEM; synchrotron Mossbauer spectroscopy; molecular magnetism; molecular spintronics

Funding

  1. Fondazione CR Firenze [2017.0730, 2016.1104]
  2. Italian MIUR (Progetto Dipartimenti di Eccellenza 2018-2022) [B96C1700020008]
  3. French National Research Agency (ANR) Investment for the Future Programme IdEx Bordeaux [ANR-10-IDEX-03-02]
  4. FEMTOMAT project [ANR13-BS04-002]
  5. Fondazione Cassa di Risparmio di Firenze
  6. Regione Toscana [6455]

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Spin crossover complexes are among the most studied classes of molecular switches and have attracted considerable attention for their potential technological use as active units in multifunctional devices. A fundamental step toward their practical implementation is the integration in macroscopic devices adopting hybrid vertical architectures. First, the physical properties of technological interest shown by these materials in the bulk phase have to be retained once they are deposited on a solid surface. Herein, we describe the study of a hybrid molecular inorganic junction embedding the spin crossover complex [Fe(qnal)(2)] (qnal = quinoline-naphthaldehyde) as an active switchable thin film sandwiched within energy-optimized metallic electrodes. In these junctions, developed and characterized with the support of state of the art techniques including synchrotron Mossbauer source (SMS) spectroscopy and focused-ion beam scanning transmission electron microscopy, we observed that the spin state conversion of the Fe(II)-based spin crossover film is associated with a transition from a space charge-limited current (SCLC) transport mechanism with shallow traps to a SCLC mechanism characterized by the presence of an exponential distribution of traps concomitant with the spin transition temperature.

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