PaperPanorama

Nuclear Theory·nucl-th

Friday·April 24, 2026

9 papers5 primary·4 cross-listed

  1. 01

    Systematic VQE Benchmarking of the Deuteron, Triton, and Helium-3 within Lattice Pionless Effective Field Theory

    Pınar Çifci🇹🇷 · Serkan Akkoyun🇹🇷 · Lloyd Ronde🇬🇧

    We investigate the performance of quantum algorithms for light nuclear systems by studying the deuteron (2H), triton (3H), and helium-3 (3He) nuclei within a lattice formulation of pionless effective field theory (EFT). We first compute ground-state energies using classical exact diagonalization (ED), serving as a benchmark reference for variational quantum algorithms. We then perform Variational Quantum Eigensolver (VQE) calculations using noiseless classical statevector simulations of quantum circuits, enabling a controlled assessment of algorithmic performance in the absence of hardware-induced noise. We calibrate the two-body low-energy constant using the deuteron system and fit the three-body interaction strength to the triton, then consistently apply the resulting Hamiltonian parameters to the helium-3 nucleus. Our VQE calculations employ physically motivated ansatze targeting the relevant particle-number sector, with explicit particle-number-conserving constructions implemented for the triton and helium-3 systems. The variational optimization includes an analysis of the Hamiltonian energy variance roviding additional insight into convergence behavior and the quality of the variational states. We find that the VQE results are in good agreement with the corresponding classical ED ground-state energies across all three systems, including the isospin-asymmetric helium-3 nucleus with Coulomb interactions. Overall, our study provides a transparent and reproducible benchmark for assessing the applicability of variational quantum algorithms to few-body nuclear systems. Additionally, we perform a noisy VQE simulation with a depolarizing noise model for the triton system to illustrate the impact of realistic Noisy Intermediate-Scale Quantum (NISQ)-era hardware noise on variational energy estimation.

    nucl-th0 citations
  2. 02

    Conformal prediction for uncertainties in the neutron star equation of state

    Habib Yousefi Dezdarani · Ryan Curry · Cassandra L. Armstrong · Alexandros Gezerlis

    We study uncertainties in the equation of state of neutron stars using conformal prediction as a distribution-free and model-agnostic method that provides coverage guarantees. In particular, we apply the Conformalized Quantile Regression (CQR) method to posterior samples calculated from Bayesian inference, creating reliable uncertainty bands without assuming a specific form of the underlying distribution. We first construct CQR bands as a postprocessing step to the posterior samples of neutron star mas-radius relations provided by the NMMA collaboration and to Quantum Monte Carlo calculations of pure neutron matter. In all cases, empirical coverage studies confirm the robustness of the method.

    nucl-th2 citations
  3. 03

    Octupole correlation effects on two-neutron transfer intensity in rare-earth nuclei

    Kosuke Nomura

    Impacts of octupole correlations on the low-lying states and two-neutron transfer intensities in rare-earth nuclei are investigated in terms of the interacting boson model that is based on the nuclear density functional theory. The octupole degrees of freedom are not only essential building blocks to describe properties of negative-parity states in the model, but also influence low-spin positive-parity states including excited states. The calculation produces a large number of low-energy states that contain significant amounts of octupole components, indicating important roles played by the octupole degrees freedom in this mass region. Octupole correlations are shown to make sizable contributions to the and transfer intensities and, in particular, to reproduce the discontinuous changes of these quantities near those nuclei with or 90, which are observed experimentally as a signature of the shape phase transition.

    nucl-thnucl-exPRC(2026)·2 citations
  4. 04

    Ground-state properties of superheavy isotopes within the deformed relativistic Hartree-Bogoliubov theory in continuum

    Jin-Hong Zhuang · Zhen-Hua Zhang · Yuan-Yuan Wang · Cong Pan · Kai-Yuan Zhang · Huan-Yu Zhang · Yu Sun

    The ground-state properties of superheavy isotopes are investigated using the deformed relativistic Hartree-Bogoliubov theory in continuum (DRHBc). Bulk properties, including binding energies, Fermi energies, nucleon separation energies, quadrupole deformations, and root-mean-square radii, are calculated. The results are compared with those obtained from the relativistic continuum Hartree-Bogoliubov (RCHB) theory. By examining the dependence on the angular-momentum cutoff and the effects of triaxial and octupole deformations, a strategy for determining the ground states is suggested. Furthermore, based on an analysis of the Fermi and nucleon separation energies, the proton and neutron drip lines for isotopes are determined within both the DRHBc and RCHB frameworks. The possible magic numbers , 258, and 350 are also suggested. Finally, the evolution of single-particle levels, deformation, charge and neutron radii as well as average pairing gaps with increasing neutron number, is discussed.

    nucl-thCPC(2026)·0 citations
  5. 05

    Multi-Nucleon Transfer Reactions and the Creation and the Evolution of the Compound Nucleus

    Matthew Kafker · Aurel Bulgac

    We present the first implementation of a novel extension of the Generator Coordinate Method (GCM), dubbed the enhanced GCM (eGCM), which is applied to the grazing Multi-Nucleon Transfer (MNT) reaction Ca+Pb near the Coulomb barrier. eGCM incorporates major qualitative differences with either Time-Dependent Hartree-Fock (TDHF) or GCM frameworks used until now for nuclear reactions. We demonstrate that the eGCM framework describes for the first time in a fully quantum microscopic framework the emergence and the time-evolution of Niels Bohr's 1936 conjectured Compound Nucleus (CN). The thermalization time extracted in eGCM is at least two orders of magnitude larger than the Eigenstate Thermalization Hypothesis (ETH) would predict.

    nucl-th4 citations

Affiliations

first authorsco-authorsvia INSPIRE