Restricting Conformational Space: A New Blueprint for Electrically Switchable Self‐Assembled Monolayers

Author:

Kirsch Peer123ORCID,Dlugosch Julian M.4ORCID,Kamiyama Takuya4,Pfeiffer Christian4ORCID,Seim Henning1,Resch Sebastian1ORCID,Voges Frank1,Lieberman Itai1ORCID,Nalakath Abin Nas2ORCID,Liu Yangbiao5,Zharnikov Michael5ORCID,Tornow Marc46ORCID

Affiliation:

1. Merck Electronics KGaA Frankfurter Str. 250 D‐64293 Darmstadt Germany

2. Institute of Materials Science Technical University of Darmstadt Peter‐Grünberg‐Str. 2D D‐64287 Darmstadt Germany

3. Freiburg Materials Research Center (FMF) Albert Ludwig University Freiburg Stefan‐Meier‐Str. 21 D‐79104 Freiburg Germany

4. Molecular Electronics Technical University of Munich Hans‐Piloty‐Str. 1 D‐85748 Garching Germany

5. Angewandte Physikalische Chemie Heidelberg University Im Neuenheimer Feld 253 D‐69120 Heidelberg Germany

6. Fraunhofer Institute for Electronic Microsystems and Solid State Technologies (EMFT) Hansastr. 27d D‐80686 Munich Germany

Abstract

AbstractTunnel junctions comprising self‐assembled monolayers (SAMs) from liquid crystal‐inspired molecules show a pronounced hysteretic current–voltage response, due to electric field‐driven dipole reorientation in the SAM. This renders these junctions attractive device candidates for emerging technologies such as in‐memory and neuromorphic computing. Here, the novel molecular design, device fabrication, and characterization of such resistive switching devices with a largely improved performance, compared to the previously published work are reported. Those former devices suffer from a stochastic switching behavior limiting reliability, as well as from critically small read‐out currents. The present progress is based on replacing Al/AlOx with TiN as a new electrode material and as a key point, on redesigning the active molecular material making up the SAM: a previously present, flexible aliphatic moiety has been replaced by a rigid aromatic linker, thereby introducing a molecular “ratchet”. This restricts the possible molecular conformations to only two major states of opposite polarity. The above measures have resulted in an increase of the current density by five orders of magnitude as well as in an ON/OFF conductance ratio which is more than ten times higher than the individual scattering ranges of the high and low resistance states.

Publisher

Wiley

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