English

Unitary Encoding of Thermal States via Thermofield Dynamics on Quantum Computers

Quantum Physics 2026-04-02 v1

Abstract

Quantum computing has attracted the attention of the scientific community in the past few decades. However, despite some relevant advantages, near-term quantum devices remain severely limited by thermal effects, which induce decoherence and restrict coherent control at finite temperature. In this regard, this work reports a gate-based quantum algorithm that prepares the finite-temperature vacuum of Thermofield Dynamics (TFD) and tracks its real-time evolution. The circuit depth scales linearly with system size and requires only single-qubit rotations and nearest-neighbor CNOT gates, making it NISQ-friendly. We benchmark the protocol on the PennyLane simulator: magnetization of a spin-1/21/2 particle in a magnetic field agrees with the exact result M(β)=tanh(βω/2)M(\beta)=\tanh(\beta\omega/2) to machine precision, and the coherent precession acquires a temperature-dependent damping that quantitatively matches the analytical TFD prediction. Our work provides a ready-to-deploy toolbox for thermal quantum simulations and opens a route to study dissipative phase transitions, quantum thermodynamics and thermal machine-learning models on near-term devices.

Keywords

Cite

@article{arxiv.2604.00802,
  title  = {Unitary Encoding of Thermal States via Thermofield Dynamics on Quantum Computers},
  author = {G. X. A. Petronilo and M. R. Araújo and A. B. M. Souza and Clebson Cruz},
  journal= {arXiv preprint arXiv:2604.00802},
  year   = {2026}
}