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Updated: May 10, 2026

Assembly and Characterization of Biomolecular Memristors Consisting of Ion Channel-doped Lipid Membranes
Published on: March 9, 2019
Colossal emergent inductance in a molecular memristor
Yugo Oshima1, Rei Usami2, Tetsuro Moriya2
1RIKEN, Pioneering Research Institute (RIKEN-PRI), Hirosawa 2-1, Wako-shi, Saitama, 351-0198, Japan. yugo@riken.jp.
None:
Memristors exhibit history-dependent transport and are widely studied for their hysteretic current-voltage characteristics, yet their dynamical electrodynamic roles remain largely unexplored. Here, we investigate the quasi-one-dimensional halogen-bridged metal complex [Ni(chxn)[Formula: see text]Br]Br[Formula: see text] using transport measurements, impedance spectroscopy, and oscillation analysis. We show that this material functions as a memristor exhibiting a clear pinched hysteresis loop (PHL) under ac bias. Remarkably, this hysteresis gives rise to a colossal emergent inductance of [Formula: see text]-[Formula: see text] H, far exceeding that of conventional coil-based inductors. The inductive response appears only under finite bias, ruling out parasitic origins, and is independently confirmed by impedance spectroscopy and oscillation-frequency analysis. When combined with a simple capacitor, this intrinsic inductance together with negative differential resistance drives self-sustained oscillations without any external inductor, redefining the origin of oscillatory behavior in this system. These results establish emergent inductance as a fundamental memristive property, reveal a new electrodynamic functionality in correlated molecular materials, and suggest potential routes toward coil-free low-frequency functionalities in electronic and neuromorphic systems.
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