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Toward High-ThroughputVirtual Screening via Quasi-AdiabaticQuantum Geometry Optimization Workflow
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Authors: Leonardo U. Masci, Fabio Tarocco, Domenico Bonanni, Matteo Barbieri, Simone Rizzo, Andrea R. Beccari, Leonardo Guidoni
Year
2026
Paper ID
77630
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
144
Citations
N/A
Abstract
Abstract This work addresses the challenge of molecular geometry optimization at post-Hartree–Fock levels of theory using quantum computing methodologies. We present a novel potentially quasi-adiabatic approach based on the Variational Quantum Eigensolver (VQE) algorithm for efficient exploration of potential energy surfaces. The method combines quantum-circuit emulators with classical optimization routines and uses the Hellmann–Feynman theorem, including Pulay corrections, together with a finite-difference scheme to compute forces. Our implementation uses GPU-accelerated quantum-circuit operations within a parallelized framework, achieving computational efficiency by warm-starting the wavefunction and reoptimizing it at each subsequent geometry-optimization step. Benchmark results on small molecular systems demonstrate the feasibility of this hybrid quantum-classical approach, with detailed comparisons against established quantum chemistry methods, including CASCI and DFT optimizations. We discuss the current limitations, computational advantages, and potential future developments of this methodology in the context of quantum chemistry for drug discovery applications.
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- This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
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- Abstract This work addresses the challenge of molecular geometry optimization at post-Hartree–Fock levels of theory using quantum computing methodologies.
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