Publication: Simulation of Electronic Structure Hamiltonians Using Quantum Computers
Open/View Files
Date
2011
Published Version
Journal Title
Journal ISSN
Volume Title
Publisher
Taylor & Francis
The Harvard community has made this article openly available. Please share how this access benefits you.
Citation
Whitfield, James D., Jacob Biamonte, and Alán Aspuru-Guzik. 2011. Simulation of electronic structure Hamiltonians using quantum computers. Molecular Physics 109(5): 735-750.
Research Data
Abstract
Over the last century, a large number of physical and mathematical developments paired with rapidly advancing technology have allowed the field of quantum chemistry to advance dramatically. However, the lack of computationally efficient methods for the exact simulation of quantum systems on classical computers presents a limitation of current computational approaches. We report, in detail, how a set of pre-computed molecular integrals can be used to explicitly create a quantum circuit, i.e. a sequence of elementary quantum operations, that, when run on a quantum computer, obtains the energy of a molecular system with fixed nuclear geometry using the quantum phase estimation algorithm. We extend several known results related to this idea and discuss the adiabatic state preparation procedure for preparing the input states used in the algorithm. With current and near future quantum devices in mind, we provide a complete example using the hydrogen molecule of how a chemical Hamiltonian can be simulated using a quantum computer.
Description
Other Available Sources
Keywords
electronic structure, quantum computing, chemical physics, quantum physics
Terms of Use
This article is made available under the terms and conditions applicable to Open Access Policy Articles (OAP), as set forth at Terms of Service