State-average calculations based on a 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 are 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
We present an efficient set of methods for propagating excited-state dynamics involving a large numb...
When multiple quantum particles of different species - or "flavors" - are allowed to interact via pa...
In this paper, we have developed a unitary variant of a double exponential coupled cluster theory, w...
State-average calculations based on mixture of states are increasingly being exploited across chemis...
For most quantum mechanical systems of physical interest, central properties like the energy spectru...
We establish a framework which allows one to systematically construct novel schemes for measurement-...
Algorithms for calculating singlet excitation energies in the coupled cluster singles and doubles (C...
Non-unitary theories are commonly seen in the classical simulations of quantum systems. Among these ...
Simulating molecules using the Variational Quantum Eigensolver method is one of the promising applic...
In non-relativistic quantum mechanics, stationary states of molecules and atoms are described by eig...
We introduce a unitary coupled-cluster (UCC) ansatz termed k-UpCCGSD that is based on a family of sp...
We present a novel analytical approach for the calculation of the mean density of states in many-bod...
We propose a way of universal quantum computation by doing joint measurements on distributed singlet...
Unitary cluster expansions of the electronic wavefunction have recently gained much interest because...
Electronic structure methods typically benefit from symmetry breaking and restoration, specially in ...
We present an efficient set of methods for propagating excited-state dynamics involving a large numb...
When multiple quantum particles of different species - or "flavors" - are allowed to interact via pa...
In this paper, we have developed a unitary variant of a double exponential coupled cluster theory, w...
State-average calculations based on mixture of states are increasingly being exploited across chemis...
For most quantum mechanical systems of physical interest, central properties like the energy spectru...
We establish a framework which allows one to systematically construct novel schemes for measurement-...
Algorithms for calculating singlet excitation energies in the coupled cluster singles and doubles (C...
Non-unitary theories are commonly seen in the classical simulations of quantum systems. Among these ...
Simulating molecules using the Variational Quantum Eigensolver method is one of the promising applic...
In non-relativistic quantum mechanics, stationary states of molecules and atoms are described by eig...
We introduce a unitary coupled-cluster (UCC) ansatz termed k-UpCCGSD that is based on a family of sp...
We present a novel analytical approach for the calculation of the mean density of states in many-bod...
We propose a way of universal quantum computation by doing joint measurements on distributed singlet...
Unitary cluster expansions of the electronic wavefunction have recently gained much interest because...
Electronic structure methods typically benefit from symmetry breaking and restoration, specially in ...
We present an efficient set of methods for propagating excited-state dynamics involving a large numb...
When multiple quantum particles of different species - or "flavors" - are allowed to interact via pa...
In this paper, we have developed a unitary variant of a double exponential coupled cluster theory, w...