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Gradient Echo Quantum Memory in Warm Atomic Vapor
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Fast gradient-free optimization of excitations in variational quantum eigensolvers.

Jonas Jäger1,2,3,4, Thierry N Kaldenbach1, Max Haas1

  • 1German Aerospace Center (DLR), Institute of Materials Research, Cologne, Germany.

Communications Physics
|November 3, 2025
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Summary

We developed ExcitationSolve, a novel quantum optimizer for finding molecular ground states. This new method accelerates quantum chemistry calculations, achieving high accuracy with fewer resources.

Keywords:
Chemical physicsComputational scienceQuantum informationQuantum simulation

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Area of Science:

  • Quantum computing
  • Computational chemistry
  • Quantum algorithms

Background:

  • Variational quantum eigensolvers (VQEs) are key for quantum chemistry.
  • Current optimizers struggle with complex excitation operators used in physically motivated ansätze.
  • Existing methods like Rotosolve are limited to simpler operator types.

Purpose of the Study:

  • Introduce ExcitationSolve, a novel quantum-aware optimizer.
  • Extend optimization capabilities to parameterized unitaries with specific generator properties (G^3 = G).
  • Enable efficient optimization for excitation operators in quantum chemistry.

Main Methods:

  • ExcitationSolve is a globally-informed, gradient-free, and hyperparameter-free optimizer.
  • It determines global optima per parameter using quantum resources equivalent to one gradient-based update step.
  • Strategies for fixed and adaptive ansätze, including simultaneous multi-excitation optimization, are provided.

Main Results:

  • ExcitationSolve outperforms state-of-the-art optimizers on molecular ground state energy benchmarks.
  • Achieves chemical accuracy for equilibrium geometries rapidly (single parameter sweep).
  • Yields shallower adaptive ansätze and demonstrates robustness against hardware noise.

Conclusions:

  • ExcitationSolve offers a significant advancement for quantum chemistry on quantum computers.
  • Unites physical insight with efficient optimization for scalable calculations.
  • Paves the way for more accurate and efficient molecular simulations.