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Quantum Simulation of Open Quantum Systems Using Density-Matrix Purification

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arxiv 2207.07112 v2 pith:52UPVYLA submitted 2022-07-14 quant-ph physics.chem-phphysics.comp-ph

Quantum Simulation of Open Quantum Systems Using Density-Matrix Purification

classification quant-ph physics.chem-phphysics.comp-ph
keywords quantumsystemqubitnon-unitaryopenoperationspurificationsimulation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Electronic structure and transport in realistically-sized systems often require an open quantum system (OQS) treatment, where the system is defined in the context of an environment. As OQS evolution is non-unitary, implementation on quantum computers -- limited to unitary operations -- is challenging. We present a general framework for OQSs where the system's $d \times d$ density matrix is recast as a $d^{2}$ wavefunction which can be evolved by unitary transformations. This theory has two significant advantages over conventional approaches: (i) the wavefunction requires only an $n$-qubit, compared to $2n$-qubit, bath for an $n$-qubit system and (ii) the purification includes dynamics of any pure-state universe. We demonstrate this method on a two-level system in a zero temperature amplitude damping channel and a two-site quantum Ising model. Quantum simulation and experimental-device results agree with classical calculations, showing promise in simulating non-unitary operations on NISQ quantum devices.

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Cited by 2 Pith papers

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  1. A Compilation Framework for Quantum Simulation of Non-unitary Dynamics

    quant-ph 2026-05 unverdicted novelty 7.0

    A new compilation framework treats quantum channels as first-class objects via ChannelIR and LindFront, achieving up to 99% gate count reduction on Lindbladian benchmarks versus unoptimized and Stinespring baselines.

  2. Quantum simulations of ultrafast optical spectroscopy of semiconductors on digital quantum computers in the semi-classical approximation

    quant-ph 2026-06 unverdicted novelty 6.0

    The work presents a quantum computing framework for semiconductor optical spectroscopy that matches classical results for GaAs in the noiseless limit and notes that NISQ noise acts as extra scattering.