English

Dissipation-Reliability Tradeoff for Stochastic CMOS Bits in Series

Statistical Mechanics 2026-03-06 v1

Abstract

Physical instantiations of a bit of information are subject to thermal noise that can trigger unintended bit-flip errors. Bits implemented with CMOS technology typically operate in regimes that reliably suppress these errors with a large bias voltage, but miniaturization and circuit design for implantable biomedical devices motivate error suppression via alternative low-voltage strategies. We present and analyze an error-suppression technique that involves coupling multiple CMOS units into chains, introducing a natural error correction arising from inter-unit correlations. Using tensor networks to numerically solve a stochastic master equation for the CMOS chain, we quantify the reliability-dissipation tradeoff across system sizes that would be intractable with conventional sparse-matrix methods. The calculations show that the typical time for bit-flip errors scales exponentially with the bias voltage but subexponentially with the chain length. While a CMOS chain adds stability compared to a single CMOS unit for a fixed low bias voltage, increasing the bias voltage is a lower-dissipation route to equivalent stability.

Keywords

Cite

@article{arxiv.2603.04658,
  title  = {Dissipation-Reliability Tradeoff for Stochastic CMOS Bits in Series},
  author = {Cathryn Murphy and Schuyler Nicholson and Nahuel Freitas and Emanuele Penocchio and Todd Gingrich},
  journal= {arXiv preprint arXiv:2603.04658},
  year   = {2026}
}

Comments

5 pages, 3 figures

R2 v1 2026-07-01T11:04:03.495Z