| Literature DB >> 29849155 |
Chris Sparrow1,2, Enrique Martín-López3, Nicola Maraviglia1, Alex Neville1, Christopher Harrold1, Jacques Carolan4, Yogesh N Joglekar5, Toshikazu Hashimoto6, Nobuyuki Matsuda7, Jeremy L O'Brien1, David P Tew8, Anthony Laing9.
Abstract
Advances in control techniques for vibrational quantum states in molecules present new challenges for modelling such systems, which could be amenable to quantum simulation methods. Here, by exploiting a natural mapping between vibrations in molecules and photons in waveguides, we demonstrate a reprogrammable photonic chip as a versatile simulation platform for a range of quantum dynamic behaviour in different molecules. We begin by simulating the time evolution of vibrational excitations in the harmonic approximation for several four-atom molecules, including H2CS, SO3, HNCO, HFHF, N4 and P4. We then simulate coherent and dephased energy transport in the simplest model of the peptide bond in proteins-N-methylacetamide-and simulate thermal relaxation and the effect of anharmonicities in H2O. Finally, we use multi-photon statistics with a feedback control algorithm to iteratively identify quantum states that increase a particular dissociation pathway of NH3. These methods point to powerful new simulation tools for molecular quantum dynamics and the field of femtochemistry.Entities:
Year: 2018 PMID: 29849155 DOI: 10.1038/s41586-018-0152-9
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962