Quantum Algorithm for Simulating Single-Molecule Electron Transport
Author(s):
Soran Jahangiri, Juan Miguel Arrazola, Alain Delgado
Journal:
The Journal of Physical Chemistry Letters
Year:
2021
Volume:
12
Pages
1256-1260
DOI:
10.1021/acs.jpclett.0c03724
Abstract:
An accurate description of electron transport at a molecular level requires a precise treatment of quantum effects. These effects play a crucial role in determining the electron transport properties of single molecules, which can be challenging to simulate classically. Here we introduce a quantum algorithm to efficiently calculate electronic current through single-molecule junctions in the weak-coupling regime. We show that a quantum computer programmed to simulate vibronic transitions between different charge states of a molecule can be used to compute electron-transfer rates and electronic current. In the harmonic approximation, the algorithm can be implemented using Gaussian boson sampling devices, which are a near-term platform for photonic quantum computing. We apply the algorithm to simulate the current and conductance of a magnesium porphine molecule. The algorithm provides a means for better understanding the mechanism of electron transport at a molecular level, which paves the way for building practical molecular electronic devices.