Gloria Capano, T.J. Penfold, et al.
Physical Chemistry Chemical Physics
Nonrelativistic quantum mechanics is commonly formulated in terms of wavefunctions (probability amplitudes) obeying the static and the time-dependent Schrödinger equations (SE). Despite the success of this representation of the quantum world a wave-particle duality concept is required to reconcile the theory with observations (experimental measurements). A first solution to this dichotomy was introduced in the de Broglie-Bohm theory according to which a pilot-wave (solution of the SE) is guiding the evolution of particle trajectories. Here, I propose a geometrization of quantum mechanics that describes the time evolution of particles as geodesic lines in a curved space, whose curvature is induced by the quantum potential. This formulation allows therefore the incorporation of all quantum effects into the geometry of space-time, as it is the case for gravitation in the general relativity.
Gloria Capano, T.J. Penfold, et al.
Physical Chemistry Chemical Physics
Ivano Tavernelli
Physical Chemistry Chemical Physics
Shadi Fatayer, Florian Albrecht, et al.
Physical Review Letters
Francesco Tacchino, Michele Grossi, et al.
CLEO 2019