Projects per year
Abstract
The most advanced techniques using fault-tolerant quantum computers to estimate the ground-state energy of a chemical Hamiltonian involve compression of the Coulomb operator through tensor factorizations, enabling efficient block encodings of the Hamiltonian. A natural challenge of these methods is the degree to which block-encoding costs can be reduced. We address this challenge through the technique of spectral amplification, which magnifies the spectrum of the low-energy states of Hamiltonians that can be expressed as sums of squares. Spectral amplification enables estimating ground-state energies with significantly improved cost scaling in the block encoding normalization factor Λ to just √2Λ𝐸gap , where 𝐸gap ≪Λ is the lowest energy of the sum-of-squares Hamiltonian. To achieve this, we show that sum-of-squares representations of the electronic structure Hamiltonian are efficiently computable by a family of classical simulation techniques that approximate the ground-state energy from below. In order to further optimize, we also develop a novel factorization that provides a trade-off between the two leading Coulomb integral factorization schemes—namely, double factorization and tensor hypercontraction—that when combined with spectral amplification yields a factor of 4 to 195 speedup over the state of the art in ground-state energy estimation for models of iron-sulfur complexes and a CO2-fixation catalyst.
| Original language | English |
|---|---|
| Article number | 041016 |
| Pages (from-to) | 041016-1-041016-41 |
| Number of pages | 41 |
| Journal | Physical Review X |
| Volume | 15 |
| Issue number | 4 |
| DOIs | |
| Publication status | Published - 31 Oct 2025 |
Bibliographical note
Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.Fingerprint
Dive into the research topics of 'Fast quantum simulation of electronic structure by spectral amplification'. Together they form a unique fingerprint.-
Griffith Led: Heisenberg-limited lasers: building the revolution
Wiseman, H. M. (Chief Investigator), Berry, D. (Primary Chief Investigator), Huard, B. (Partner Investigator), Bienfait, A. (Partner Investigator) & Mirrahimi, M. (Partner Investigator)
13/10/22 → 12/10/26
Project: Research
-
UTS led: Pushing the digital limits in quantum simulation for advanced manufacturing
Langford, N. (Chief Investigator), Dehollain, J. (Chief Investigator), Burgarth, D. (Primary Chief Investigator), Berry, D. (Chief Investigator) & Heyl, M. (Partner Investigator)
26/03/21 → 25/03/24
Project: Research
Cite this
- APA
- Author
- BIBTEX
- Harvard
- Standard
- RIS
- Vancouver