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April 29, 2026Nano Research0 citationsOpen Access

Torque-controlled stochastic switching in single-molecule devices

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XCXinyue ChangXWXiao X. WeiCZCong Zhao

Key Points

  • This research aims to develop and demonstrate a torque-controlled single-molecule stochastic switch.
  • Utilized molecular devices at thermal equilibrium for probabilistic switching.
  • Constructed a device with an aminoalkyl-functionalized zinc complex between graphene electrodes.
  • Induced controlled conformational changes through external electric fields and torque modulation.
  • Demonstrated a device with precise tunability of output probability via bias voltage modulation.
  • Showed the characteristic sigmoidal response of the probabilistic devices.
  • Mapped the free-energy landscape to facilitate design of stable probabilistic devices under ambient conditions.

Abstract

Probabilistic switching devices, as an emerging class of electronic components enabling stochastic transitions between binary states, offer unique prospects for stochastic computing tasks including true random number generation, Monte Carlo simulation, and Bayesian inference. In this study, leveraging the inherent Boltzmann-distributed output of molecular devices at thermal equilibrium and their high sensitivity to external fields, a torque-controlled single-molecule stochastic switch is demonstrated at room temperature. This device comprises an aminoalkyl-functionalized zinc complex with an orthogonal dipole moment, which is covalently bridged between graphene electrodes. Through synergistic coupling of molecular dipole with an external electric field, an asymmetric torque is induced, driving controlled conformational changes under steric confinement and enabling programmable stochastic switching between high- and low-conductance states. The output probability is precisely tunable via bias voltage modulation, exhibiting the characteristic sigmoidal response of probabilistic devices. Furthermore, temperature-dependent experiments map the free-energy landscape of the molecular probabilistic switch. This insight facilitates the rational design of stable and controllable probabilistic devices working under ambient conditions.

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Cite This Study

Chang et al. (2026) studied this question.

synapsesocial.com/papers/69f154e0879cb923c49451a9https://doi.org/10.26599/nr.2026.94908768
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