Output list
Journal article
First online publication 08/06/2024
Journal of Physics: Condensed Matter, 36, 44, 445701
Journal article
Quantum fluctuations drive nonmonotonic correlations in a qubit lattice
Published 01/18/2024
Nature Communications, 15, 1, 589
Journal article
Field-induced magnetic phases in a qubit Penrose quasicrystal
Published 03/17/2023
Science Advances, 9, 11, eadf663
Journal article
Published 02/27/2023
Nature Communications, 14, 1, 1105
Journal article
What can data science tell us about finding new superconductors?
Published 11/11/2022
Patterns, 3, 11, 100630
Journal article
Toward a QUBO-Based Density Matrix Electronic Structure Method
Published 07/12/2022
Journal of chemical theory and computation, 18, 7, 4177 - 4185
Density matrix electronic structure theory is used in many quantum chemistry methods to "alleviate" the computational cost that arises from directly using wave functions. Although density matrix based methods are computationally more efficient than wave function based methods, significant computational effort is involved. Because the Schrodinger equation needs to be solved as an eigenvalue problem, the time-to-solution scales cubically with the system size in mean-field type approaches such as Hartree-Fock and density functional theory and is solved as many times in order to reach charge or field self-consistency. We hereby propose and study a method to compute the density matrix by using a quadratic unconstrained binary optimization (QUBO) solver. This method could be useful to solve the problem with quantum computers and, more specifically, quantum annealers. Our proposed approach is based on a direct construction of the density matrix using a QUBO eigensolver. We explore the main parameters of the algorithm focusing on precision and efficiency. We show that, while direct construction of the density matrix using a QUBO formulation is possible, the efficiency and precision have room for improvement. Moreover, calculations performed with quantum annealing on D-Wave's new Advantage quantum computer are compared with results obtained with classical simulated annealing, further highlighting some problems of the proposed method. We also suggest alternative methods that could lead to a more efficient QUBO-based density matrix construction.
Journal article
Toward a QUBO-Based Density Matrix Electronic Structure Method
Published 07/12/2022
Journal of Chemical Theory and Computation, 18, 7, 4177-4185
Conference proceeding
Two-Dimensional Borides Discovery
Published 03/06/2022
2022 6th IEEE Electron Devices Technology & Manufacturing Conference (EDTM), 319 - 320
A set of rules based on charge transfer principles to create dynamically stable transition metal, lanthanide, and actinide based low-dimensional borides is provided. By employing basic chemical rules based on a charge transfer analysis of metal atoms to electron deficient honeycombed B lattices we predict and describe complex covalent two-dimensional (2D) heterostructures hosting Dirac states. The guidelines are supported with the analysis of first-principles computed phonon spectra. Multilayered borides open a rich playground to explore novel physical properties and new materials.
Journal article
Exploring metastable states in UO2 using hybrid functionals and dynamical mean field theory
Published 03/02/2022
Journal of Physics: Condensed Matter, 34, 9, 094003
Journal article
Published 07/30/2021
Science, 373, 6554, 576-580