Skip to content
Preprint

Iterative Projection-Based Embedding Scheme Combined with Variational Quantum Eigensolver

Aug 2026 · 0 citations · 67 references
Physics

TL;DR

An iterative projection-based embedding framework combined with VQE, in which the environment density is allowed to respond self-consistently to the refined electronic structure of the embedded subsystem described by VQE, yielding a self-consistent and reliable treatment of inter-subsystem correlation.

Abstract

Quantum embedding methods offer a promising route to extend quantum chemical calculations to large multiscale systems by treating a chemically important subsystem at a high level of theory while describing its surrounding environment at an affordable level. The methods are also quite relevant for quantum computing approaches based on hardware with limited resources. Here, we present an iterative projection-based embedding framework combined with VQE, in which the environment density is allowed to respond self-consistently to the refined electronic structure of the embedded subsystem described by VQE. Unlike conventional one-shot approaches where the environment remains frozen after the initial orbital optimization, the proposed iterative scheme alternates between the VQE-level treatment of the subsystem and a mean-field-level refinement of the environment until mutual self-consistency is achieved. The convergence behavior of the scheme is first examined using several small test systems. Its practical applicability is then demonstrated with a composite system with a CH2NH molecule sandwiched by two benzene rings, with the C=N dihedral angle rotating from 0 to 90 deg. The iterative procedure consistently converges within ~10 iteration steps across all tested geometries, yielding energies below the conventional one-shot embedding results. The converged results well reproduce the fully correlated reference energy employing the same active space, and the resulting potential energy surface with respect to the dihedral rotation is also in good agreement with the reference one. These results demonstrate that our iterative embedding framework is numerically robust and physically sound, yielding a self-consistent and reliable treatment of inter-subsystem correlation. We expect that its formulation will be particularly compatible with the emerging paradigm of quantum-classical hybrid computing.

View source

Similar papers

Preprint Sep 2026

A Recursive Module-Coupling Algorithm for Computing Low-Energy Eigenstates

A recursive module-coupling algorithm, which iteratively treats a system as a composition of locally-coupled smaller modules, with low-energy subspace estimated successively according to the same recursive structure, leading naturally to a recursive quantum variational algorithm, providing a systematic and modular circ...

Di-Hang Sun, Nan-Nan Ma, Ching-Hua Lee et al. · 0 citations
Preprint Sep 2026

Locally optimized variational evolution for quantum many-body systems

Conventional quantum advantage in many-body dynamics is based on avoiding the simulation cost on a classical computer that arises from the extensive exponential complexity of the global wavefunction. Local observables, however, do not inherit this extensive complexity and may instead be governed by an intrinsic local c...

C. Wille, Max Marvell, Lauren Stewart et al. · 0 citations
Preprint Jul 2026

ViBra: Configuration Interaction for Anharmonic Vibrational Spectroscopy and Quantum-Sampled Configuration Spaces

This work introduces a methodology for performing anharmonic vibrational structure calculations that can be deployed in a hybrid, quantum-classical mode and demonstrates a hybrid, quantum-classical computational workflow, in which a quantum sampling algorithm provides the seed.

R. F. Ligório, Marco Antonio Barroca, Alan C. Duriez et al. · 0 citations
Preprint Aug 2026

Optimizing Subspace Expansion in Quantum Chemistry through Operator Selection and Reference State Choice

The Virtual Quantum Subspace Expansion (VQSE) extends the Variational Quantum Eigensolver (VQE) by leveraging additional measurements on the reference state to capture the influence of excluded virtual orbitals. This makes VQSE attractive for chemical applications where accurate energy differences along potential energ...

Konstantin Lamp, Alejandro D. Somoza, Elias Walter et al. · 0 citations
Preprint Jul 2026

Iterative minimization in reduced density matrix functional theory for periodic systems

Reduced density matrix functional theory (RDMFT) offers a route beyond Kohn-Sham density functional theory for strongly correlated systems, yet practical calculations for periodic solids are still out of reach. We formulate RDMFT for extended systems in a basis-independent way and present a planewave implementation usi...

Kaiyan Luo, Jin-Gang Han, Pei-Ze Lin et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.