Kaldenbach, Thierry N. ; Heller, Matthias ; Alber, Gernot ; Stojanović, Vladimir M. (2024)
Digital Quantum Simulation of Scalar Yukawa Coupling.
In: Quantum Reports, 2024, 6 (3)
doi: 10.26083/tuprints-00027871
Article, Secondary publication, Publisher's Version
Text
quantumrep-06-00024.pdf Copyright Information: CC BY 4.0 International - Creative Commons, Attribution. Download (1MB) |
Item Type: | Article |
---|---|
Type of entry: | Secondary publication |
Title: | Digital Quantum Simulation of Scalar Yukawa Coupling |
Language: | English |
Date: | 18 September 2024 |
Place of Publication: | Darmstadt |
Year of primary publication: | September 2024 |
Place of primary publication: | Basel |
Publisher: | MDPI |
Journal or Publication Title: | Quantum Reports |
Volume of the journal: | 6 |
Issue Number: | 3 |
DOI: | 10.26083/tuprints-00027871 |
Corresponding Links: | |
Origin: | Secondary publication DeepGreen |
Abstract: | Motivated by the revitalized interest in the digital simulation of medium- and high-energy physics phenomena, we investigate the dynamics following a Yukawa interaction quench on IBM Q. Adopting the zero-dimensional version of the scalar Yukawa coupling model as our point of departure, we design low-depth quantum circuits, emulating its dynamics with up to three bosons. In the one-boson case, we demonstrate circuit compression, i.e., a constant-depth circuit containing only two controlled-NOT (CNOT) gates. In the more complex three-boson case, we design a circuit in which one Trotter step entails eight CNOTs. Using an analogy with the traveling salesman problem, we also provide a CNOT cost estimate for higher boson number truncations. Based on these circuits, we quantify the system dynamics by evaluating the expected boson number at an arbitrary time after the quench and the survival probability of the initial vacuum state (the Loschmidt echo). We also utilize these circuits to drive adiabatic transitions and compute the energies of the ground- and first-excited states of the considered model. Finally, through error mitigation, i.e., zero-noise extrapolation, we demonstrate the good agreement of our results with a numerically exact classical benchmark. |
Uncontrolled Keywords: | digital quantum simulation, boson–fermion coupling, low-depth quantum circuits |
Status: | Publisher's Version |
URN: | urn:nbn:de:tuda-tuprints-278718 |
Additional Information: | This article belongs to the Special Issue Exclusive Feature Papers of Quantum Reports in 2024–2025 |
Classification DDC: | 000 Generalities, computers, information > 004 Computer science 500 Science and mathematics > 530 Physics |
Divisions: | 20 Department of Computer Science > Interactive Graphics Systems 20 Department of Computer Science > Fraunhofer IGD 05 Department of Physics > Institute of Applied Physics > Theoretical Quantum Physics Group |
Date Deposited: | 18 Sep 2024 11:39 |
Last Modified: | 30 Sep 2024 09:10 |
SWORD Depositor: | Deep Green |
URI: | https://tuprints.ulb.tu-darmstadt.de/id/eprint/27871 |
PPN: | 521780586 |
Export: |
View Item |