Dissipative Quantum Algorithms for Excited-State Quantum Chemistry

Abstract Electronic excited states are central to a vast array of physical and chemical phenomena, yet accurate and efficient methods for preparing them on quantum devices remain challenging and are comparatively underexplored. We introduce a general dissipative algorithm for selectively preparing ab initio electronic excited states. The key idea is to recast excited-state preparation as an effective ground-state problem by suitably modifying the underlying Lindblad dynamics so that the target excited state becomes the unique steady state of a designed quantum channel. We develop three complementary strategies tailored to different types of prior information about the excited state, such as symmetry and approximate energy. We demonstrate the effectiveness and versatility of these schemes through numerical simulations of atomic and molecular spectra, including valence excitations in prototypical planar-conjugated molecules and transition-metal complexes. Taken together, these results provide a new pathway for advancing quantum simulation methods for realistic, strongly correlated electronic systems.

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Publication Details

Journal
Journal of Chemical Theory and Computation
Published
2026-09-19
DOI
https://doi.org/10.1021/acs.jctc.6c01298
Primary Topic
Spectroscopy and Quantum Chemical Studies
Type
article
Field-Weighted Citation Impact
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Dissipative Quantum Algorithms for Excited-State Quantum Chemistry

Hao-En Li, Lin Lin
Journal of Chemical Theory and Computation
Spectroscopy and Quantum Chemical Studies
article

Dissipative Quantum Algorithms for Excited-State Quantum Chemistry

Hao-En Li, Lin Lin
article en

Abstract

Abstract Electronic excited states are central to a vast array of physical and chemical phenomena, yet accurate and efficient methods for preparing them on quantum devices remain challenging and are comparatively underexplored. We introduce a general dissipative algorithm for selectively preparing ab initio electronic excited states. The key idea is to recast excited-state preparation as an effective ground-state problem by suitably modifying the underlying Lindblad dynamics so that the target excited state becomes the unique steady state of a designed quantum channel. We develop three complementary strategies tailored to different types of prior information about the excited state, such as symmetry and approximate energy. We demonstrate the effectiveness and versatility of these schemes through numerical simulations of atomic and molecular spectra, including valence excitations in prototypical planar-conjugated molecules and transition-metal complexes. Taken together, these results provide a new pathway for advancing quantum simulation methods for realistic, strongly correlated electronic systems.

Journal of Chemical Theory and Computation
Lawrence Berkeley National Laboratory (US), University of California, San Francisco (US), University of California System (US), University of California, Berkeley (US)
Openalex Percentile: Top 96%
Spectroscopy and Quantum Chemical Studies
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Dissipative Quantum Algorithms for Excited-State Quantum Chemistry — Hao-En Li, Lin Lin · Journal of Chemical Theory and Computation (2026) | TGRS Research Map | TGRS