State-average calculations based on mixture of states are increasingly being exploited across chemistry and physics as versatile procedures for addressing excitations of quantum many-body systems. If not too many states should need to be addressed, calculations performed on individual states is also a common option. Here we show how the two approaches can be merged into one method, dealing with a generalized yet single pure state. Implications in electronic structure calculations are discussed and for quantum computations are pointed out.Comment: 9 pages, additional calculatio
For most quantum mechanical systems of physical interest, central properties like the energy spectru...
Quantum batteries have primarily been modeled as an ensemble of isolated systems that store energy ...
This article is a brief introduction to quantum algorithms for the eigenvalue problem in quantum man...
State-average calculations based on a mixture of states are increasingly being exploited across chem...
Unitary cluster expansions of the electronic wavefunction have recently gained much interest because...
Quantum chaos in many-body systems provides a bridge between statistical and quantum physics with st...
Quantum measurements are our eyes to the quantum systems consisting of a multitude of microscopic de...
Efficient characterization of highly entangled multi-particle systems is an outstanding challenge in...
We explore the preparation of specific nuclear states on gate-based quantum hardware using variation...
We present an excited-state-specific coupled-cluster approach in which both the molecular orbitals a...
We introduce and benchmark a new systematically improvable route for excited-state calculations, sta...
We disprove the conjecture of [1], namely that it would require smarter authors to find a way of mak...
We describe a multiple electronic state adaptation of the mapping approach to surface hopping introd...
We establish a framework which allows one to systematically construct novel schemes for measurement-...
Controllable quantum many-body systems are platforms for fundamental investigations into the nature ...
For most quantum mechanical systems of physical interest, central properties like the energy spectru...
Quantum batteries have primarily been modeled as an ensemble of isolated systems that store energy ...
This article is a brief introduction to quantum algorithms for the eigenvalue problem in quantum man...
State-average calculations based on a mixture of states are increasingly being exploited across chem...
Unitary cluster expansions of the electronic wavefunction have recently gained much interest because...
Quantum chaos in many-body systems provides a bridge between statistical and quantum physics with st...
Quantum measurements are our eyes to the quantum systems consisting of a multitude of microscopic de...
Efficient characterization of highly entangled multi-particle systems is an outstanding challenge in...
We explore the preparation of specific nuclear states on gate-based quantum hardware using variation...
We present an excited-state-specific coupled-cluster approach in which both the molecular orbitals a...
We introduce and benchmark a new systematically improvable route for excited-state calculations, sta...
We disprove the conjecture of [1], namely that it would require smarter authors to find a way of mak...
We describe a multiple electronic state adaptation of the mapping approach to surface hopping introd...
We establish a framework which allows one to systematically construct novel schemes for measurement-...
Controllable quantum many-body systems are platforms for fundamental investigations into the nature ...
For most quantum mechanical systems of physical interest, central properties like the energy spectru...
Quantum batteries have primarily been modeled as an ensemble of isolated systems that store energy ...
This article is a brief introduction to quantum algorithms for the eigenvalue problem in quantum man...