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Quantum Electrodynamics Coupled-Cluster at Scale: High-Performance Implementation for Complex Systems

delete2025-12-01
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PRE
AI
N
Nicholas P. Bauman
H
Himadri Pathak
M
Marcus D. Liebenthal
A
Ajay Panyala
D
Daniel Mejı́a-Rodrı́guez
N
Niranjan Govind
Z
Zhang, Zizhuo *
DOI:10.1021/acs.jctc.5c01599delete
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Abstract

Abstract

En 中文
Coupled-cluster theory (CC) is a highly accurate and versatile method for simulating complex interactions within quantum systems. The extension of CC theory to model mixed electron-photon processes with quantum electrodynamics (QED) has improved our capability to predict cavity-modified chemistry, a field where photons are used as cost-effective and eco-friendly alternatives to catalyze/inhibit chemical reactions. However, calculations with CC methods, even without incorporating QED effects, are often prohibitively expensive. Simulations of larger systems require scalable infrastructures that exist for traditional CC methods but not for QED-CC methods. As such, we present a GPU-enabled, high-performance, open-source implementation of the quantum electrodynamics coupled-cluster method with single and double excitations (QED-CCSD) within the ExaChem quantum chemistry software package. ExaChem relies on the Tensor Algebra for Many-body Methods (TAMM) infrastructure: a parallel heterogeneous tensor library designed to achieve scalable performance on modern heterogeneous supercomputing platforms. We discuss theoretical foundations, algorithmic details, and numerical benchmarks to showcase the larger systems that ExaChem can simulate and how the integration of photonic degrees-of-freedom alters their ground-state properties.
Keywords:
LIGHT-MATTER INTERACTIONS
MOLECULAR-SYSTEMS
CAVITIES

Journal

Journal of Chemical Theory and Computation cover
Journal of Chemical Theory and Computation
IF:
5.5
Papers:
1.1W
Citations:
5.4W

Organization

P
Pacific Northwest National Laboratory
Scholars:
9.0K
Papers: 6.3K
Citations: 14
U
united states department of energy (doe)
Scholars:
11.3W
Papers: 9.6W
Citations: 246