Ab initio calculation of the Hoyle state
arXiv:1101.2547 · doi:10.1103/PhysRevLett.106.192501
Abstract
The Hoyle state plays a crucial role in the hydrogen burning of stars heavier than our sun and in the production of carbon and other elements necessary for life. This excited state of the carbon-12 nucleus was postulated by Hoyle [1] as a necessary ingredient for the fusion of three alpha particles to produce carbon at stellar temperatures. Although the Hoyle state was seen experimentally more than a half century ago [2,3], nuclear theorists have not yet uncovered the nature of this state from first principles. In this letter we report the first ab initio calculation of the low-lying states of carbon-12 using supercomputer lattice simulations and a theoretical framework known as effective field theory. In addition to the ground state and excited spin-2 state, we find a resonance at -85(3) MeV with all of the properties of the Hoyle state and in agreement with the experimentally observed energy. These lattice simulations provide insight into the structure of this unique state and new clues as to the amount of fine-tuning needed in nature for the production of carbon in stars.
4 pp, 3 eps figs, version accepted for publication in Physical Review Letters
References in corpus (3)
Cited by in corpus (203)
- Quantum Monte Carlo methods for nuclear physics
- Coupled-cluster computations of atomic nuclei
- Improved chiral nucleon-nucleon potential up to next-to-next-to-next-to-leading order
- Precision nucleon-nucleon potential at fifth order in the chiral expansion
- Three-body forces: From cold atoms to nuclei
- Microscopic Clustering in Light Nuclei
- Structure and rotations of the Hoyle state
- Quantum Monte Carlo Calculations with Chiral Effective Field Theory Interactions
- Hyperon-nucleon interaction at next-to-leading order in chiral effective field theory
- Similarity-Transformed Chiral NN+3N Interactions for the Ab Initio Description of 12-C and 16-O
- Local chiral effective field theory interactions and quantum Monte Carlo applications
- Continuum effects and three-nucleon forces in neutron-rich oxygen isotopes
- Evidence for Triangular D_3h Symmetry in 12C
- 50 Years of Quantum Chromodynamics
- Ab initio alpha-alpha scattering
- Novel chiral Hamiltonian and observables in light and medium-mass nuclei
- Unambiguous Identification of the Second 2+ State in 12C and the Structure of the Hoyle State
- Three particle quantization condition in a finite volume: 2. general formalism and the analysis of data
- Ab initio calculation of the spectrum and structure of O
- Three-particle quantization condition in a finite volume: 1. The role of the three-particle force
- Unified ab initio approach to bound and unbound states: no-core shell model with continuum and its application to 7He
- Three-Nucleon Forces: Implementation and Applications to Atomic Nuclei and Dense Matter
- Lattice Effective Field Theory for Medium-Mass Nuclei
- Collective Modes in Light Nuclei from First Principles
- Symmetry-guided large-scale shell-model theory
- Frontiers in Nuclear Astrophysics
- Two-Nucleon Higher Partial-Wave Scattering from Lattice QCD
- Hoyle state and rotational features in Carbon-12 within a no-core shell model framework
- Nuclear binding near a quantum phase transition
- Quantum Monte Carlo Methods in Nuclear Physics: Recent Advances
- Viability of carbon-based life as a function of the light quark mass
- Physics of nuclei: Key role of an emergent symmetry
- Spectrum of three-body bound states in a finite volume
- Perturbative Renormalizability of Chiral Two Pion Exchange in Nucleon-Nucleon Scattering: P- and D-waves
- Quantum Monte Carlo calculations of neutron matter with non-local chiral interactions
- Evidence for -particle condensation in nuclei from the Hoyle state deexcitation
- Variational Monte Carlo calculations of nuclei with an artificial neural-network correlator ansatz
- High precision probe of the fully sequential decay width of the Hoyle state in C
- Quantum Monte Carlo calculations of light nuclei with local chiral two- and three-nucleon interactions
- Efficient calculation of chiral three-nucleon forces up to N3LO for ab initio studies
- Modern Ab Initio Approaches and Applications in Few-Nucleon Physics with A \ge 4
- Chiral dynamics of few- and many-nucleon systems
- Ab initio calculations of the isotopic dependence of nuclear clustering
- Varying the light quark mass: impact on the nuclear force and Big Bang nucleosynthesis
- Topological phases for bound states moving in a finite volume
- The many facets of the (non relativistic) Nuclear Equation of State
- Towards grounding nuclear physics in QCD
- Hyperons in nuclear matter from SU(3) chiral effective field theory
- From bound states to the continuum
- Study of ground state properties of carbon isotopes with deformed relativistic Hartree-Bogoliubov theory in continuum
- Emergent properties of nuclei from ab initio coupled-cluster calculations
- Nuclear matrix elements from lattice QCD for electroweak and beyond-Standard-Model processes
- A Minimal Nuclear Energy Density Functional
- Testing microscopically derived descriptions of nuclear collectivity: Coulomb excitation of 22Mg
- Open -shell nuclei from first principles
- Dependence of the triple-alpha process on the fundamental constants of nature
- Ab initio many-body calculations of nucleon-4He scattering with three-nucleon forces
- Emergent geometry and duality in the carbon nucleus
- Living on the edge of stability, the limits of the nuclear landscape
- Lattice methods for strongly interacting many-body systems
- The Algebraic Cluster Model: Structure of 16O
- Hyperon-nuclear interactions from SU(3) chiral effective field theory
- Nuclear Dynamics and Reactions in the Ab Initio Symmetry-Adapted Framework
- Computational Nuclear Quantum Many-Body Problem: The UNEDF Project
- The Degree of Fine-Tuning in our Universe -- and Others
- New Ideas in Constraining Nuclear Forces
- Cluster structure of light nuclei
- Shell-model coupled-cluster method for open-shell nuclei
- Radiative capture reactions in lattice effective field theory
- Volume Dependence of Bound States with Angular Momentum
- Probing astrophysically important states in Mg nucleus to study neutron sources for the -Process
- Non-relativistic bound states in a finite volume
- Efficacy of the SU(3) scheme for ab initio large-scale calculations beyond the lightest nuclei
- Alpha clustering and alpha-capture reaction rate from ab initio symmetry-adapted description of Ne
- Operator evolution for ab initio nuclear theory
- The long and winding road from chiral effective Lagrangians to nuclear structure
- The triton with long-range chiral N3LO three nucleon forces
- Photonuclear reaction as a probe for -clustering nuclei in the quasi-deuteron region
- Anthropic considerations in nuclear physics
- Machine-learning-based identification for initial clustering structure in relativistic heavy-ion collisions
- Neutron-proton scattering with lattice chiral effective field theory at next-to-next-to-next-to-leading order
- Perturbative quantum Monte Carlo method for nuclear physics
- Deformation and cluster structures in C studied with configuration mixing using Skyrme interactions
- On the lifetime of the 2+ state in 10C
- Nucleon- Scattering and Resonances in He and Li with JISP16 and Daejeon16 interactions
- Adiabatic projection method for scattering and reactions on the lattice
- The Entanglement Entropy between Short Range Correlations and the Fermi Sea in Nuclear Structure
- Scattering cluster wave functions on the lattice using the adiabatic projection method
- A stringent upper limit on the direct 3 decay of the Hoyle State in C
- Breaking and restoration of rotational symmetry on the lattice for bound state multiplets
- Nuclear Reactions from Lattice QCD
- C properties with evolved chiral three-nucleon interactions
- Ab initio study of the beryllium isotopes Be to Be
- Decay Modes of the Hoyle State in
- Electron-scattering form factors for 6Li in the ab initio symmetry-guided framework
- Reorientation-effect measurement of the first 2 state in C: confirmation of oblate deformation
- Understanding emergent collectivity and clustering in nuclei from a symmetry-based no-core shell-model perspective
- Neutron-proton scattering at next-to-next-to-leading order in Nuclear Lattice Effective Field Theory
- Imaginary polarization as a way to surmount the sign problem in ab initio calculations of spin-imbalanced Fermi gases
- A new tool in nuclear physics: Nuclear lattice simulations
- Two-proton momentum correlation from photondisintegration of -clustering light nuclei in the quasi-deuteron region
- Relativistic effects in ab-initio electron-nucleus scattering
- Design and performance of an ionisation chamber for the measurement of low alpha-activities
- Relativistic chiral description of the nucleon-nucleon scattering
- Direct anthropic bound on the weak scale from supernovae explosions
- First Measurement of the Transition Strength in Be: Testing Ab Initio Predictions for Nuclei
- Applying Twisted Boundary Conditions for Few-body Nuclear Systems
- Wigner SU(4) symmetry, clustering, and the spectrum of C
- Uncertainty quantification in nuclear shell model
- Galilean invariance restoration on the lattice
- Strongly Resonating Bosons in Hot Nuclei
- The Tjon Band in Nuclear Lattice Effective Field Theory
- Clusters and halos in light nuclei
- Bose-Einstein condensation of alpha clusters and new soft mode in 12C--52Fe 4N nuclei in field theoretical superfluid cluster model
- Real-Space Imaginary-Time Propagators for Non-Local Nucleon-Nucleon Potentials
- Explicit inclusion of spin-orbit contribution in THSR wave function
- Density Functional Theory Approach to Nuclear Fission
- Investigating the predicted breathing-mode excitation of the Hoyle state
- Dissipative Preparation of Many-Body Quantum States: Towards Practical Quantum Advantage
- Finite volume effects in low-energy neutron-deuteron scattering
- Short range correlations in the extended quantum molecular dynamics model
- Effective interactions and operators in no-core shell model
- Sensitivity of Carbon and Oxygen Yields to the Triple-Alpha Resonance in Massive Stars
- Geometrical symmetries of nuclear systems: D(3h) and T(d) symmetries in light nuclei
- Ab initio no-core properties of 7Li and 7Be with JISP16 and NNLO_opt interactions
- Breaking and restoration of rotational symmetry for irreducible tensor operators on the lattice
- Precision measurement of the transition strength to the 2 state of C
- Exploratory investigation of nucleon-nucleon interactions using Euclidean Monte Carlo simulations
- Collective flows of O + O collisions with -clustering configurations
- Lattice Effective Field Theory Simulations of Nuclei
- Cluster model of 12C in density functional theory framework
- Phase diagram of alpha matter with Skyrme-like scalar interaction
- Shape of 13C studied by the real-time evolution method
- Quantum Monte Carlo formalism for dynamical pions and nucleons
- Consistent description for cluster dynamics and single-particle correlation
- The Hoyle Family: The search for alpha-condensate states in light nuclei
- Uncertainties of Euclidean Time Extrapolation in Lattice Effective Field Theory
- The nuclear charge radius of
- Coupled-cluster theory for strong entanglement in nuclei
- Scattering phase shifts and mixing angles for an arbitrary number of coupled channels on the lattice
- The Hoyle state and its relatives
- Effect of Coulomb energy on Skyrmions
- Repulsive Four-Body Interactions of Particles and Quasi-Stable Nuclear -Particle Condensates in Heavy Self-Conjugate Nuclei
- Reaction rate weighted multilayer nuclear reaction network
- How to renormalize coupled cluster theory
- Current Status of Nuclear Physics Research
- The Hoyle state in Nuclear Lattice EFT
- Sign-Problem-Free Nuclear Quantum Monte Carlo Simulation
- Generator coordinate method for nuclear octupole excitations: status and perspectives
- The triton lifetime from nuclear lattice effective field theory
- Combined few-body and mean-field model for nuclei
- Lattice methods and the nuclear few- and many-body problem
- Multi-Strangeness Production in Hadron Induced Reactions
- Lattice Improvement in Lattice Effective Field Theory
- Towards modeling cluster structure of Be with chiral interaction
- New Topological Structures of Skyrme Theory: Baryon Number and Monopole Number
- Effective Field Theory for Bound State Reflection
- Magnetic dipole moments as a strong signature for -clustering in even-even self-conjugate nuclei
- Symmetries and order in cluster nuclei
- Signatures of -clustering in C and C
- Shape of 12C
- Monopole and Seniority Truncations in the Large-Scale Configuration Interaction Shell Model Approach
- Investigating nuclear beta decay using lattice quantum Monte Carlo approach
- Charge-dependent nucleon-nucleon interaction at NLO in nuclear lattice effective field theory
- Ab initio informed 20Ne(p, p)16O reaction elucidates the emergence of alpha clustering from chiral potentials
- Worldline Monte Carlo method for few body nuclear physics
- Lattice methods and effective field theory
- Quantifying the sensitivity of Big Bang Nucleosynthesis to isospin breaking with input from lattice QCD
- Knots in Physics
- Novel halos in light kaonic nuclei as an indicator of nuclear equation of state at supra-normal densities
- Electromagnetic transitions in the algebraic cluster model
- Theory for Quartet Condensation in Fermi Systems with Applications to Nuclei and Nuclear Matter
- Possible Solution to the Triple Alpha Fine-Tuning Problem: Spallation Reactions during Planet Formation
- Numerical study of renormalization group flows of nuclear effective field theory without pions on a lattice
- Machine Learning Unveils the Power Law of Finite-Volume Energy Shifts
- Toward scalable quantum computations of atomic nuclei
- NuLattice: Ab initio computations of atomic nuclei on lattices
- Searching for the Tetraneutron Resonance on the Lattice
- Signature of a possible -cluster state in doubly-magic Ni
- The "Folk Theorem" on Effective Field Theory: How Does It Fare in Nuclear Physics?
- Recent progress on superstrange dynamics
- Misconceptions on Effective Field Theories and spontaneous symmetry breaking: Response to Ellis' article
- Nuclear correlation functions using first-principle calculations of lattice quantum chromodynamics
- States of the C Nucleus in the Toroidal Configuration
- LIFE ON EARTH -- AN ACCIDENT? Chiral Symmetry and the Anthropic Principle
- Nuclear forces and ab initio calculations of atomic nuclei
- Ab initio calculation of the Hoyle state and a new look at clustering in nuclei
- Clustering in nuclei from ab initio nuclear lattice simulations
- Clusters, Halos, And S-Factors In Fermionic Molecular Dynamics
- Nuclear lattice simulations: Status and perspectives
- Nucleosynthesis: what direct reactions can do for it?
- Ground-state properties of light kaonic nuclei signaling symmetry energy at high densities
- Nuclear astrophysics
- Unquenched simulations of four-nucleon interactions
- Formal Developments for Lattice QCD with Applications to Hadronic Systems
- An Outlook on Nuclear Physics
- Low Energy Continuum and Lattice Effective Field Theories
- The Be nucleus and the Hoyle state in dissociation of relativistic nuclei
- Geometric symmetries in light nuclei
- Towards the continuum coupling in nuclear lattice effective field theory I: A three-particle model
- Recent developments in neutron-proton scattering with Lattice Effective Field Theory
- Multi-probe study of excited states in : disentangling the sources of monopole strength between the Hoyle state and MeV
- Chiral Effective Field Theory after Thirty Years: Nuclear Lattice Simulations