8
talks
11
committee roles
1
leadership roles
2004–2021
years active
Contributions
QIP QCrypt TQC presenter award · △program ◇steering ○organising □local · filled = chair
Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Quantum computing enhanced computational catalysis | QIP 2021 | regular | Guang Hao Low, Vera von Burg, Thomas Haner, Damian Steiger, Markus Reiher, Matthias Troyer |
Abstract The quantum computation of electronic energies can break the curse of dimensionality that plagues many-particle quantum mechanics. It is for this reason that a universal quantum computer has the potential to fundamentally change computational chemistry and materials science, areas in which strong electron correlations present severe hurdles for traditional electronic structure methods. Here, we present a state-of-the-art analysis of accurate energy measurements on a quantum computer for computational catalysis, using improved quantum algorithms with more than an order of magnitude improvement over the best previous algorithms. As a prototypical example of local catalytic chemical reactivity we consider the case of a ruthenium catalyst that can bind, activate, and transform carbon dioxide to the high-value chemical methanol. We aim at accurate resource estimates for the quantum computing steps required for assessing the electronic energy of key intermediates and transition states of its catalytic cycle. In particular, we present new quantum algorithms for double-factorized representations of the four-index integrals that can significantly reduce the computational cost over previous algorithms, and we discuss the challenges of increasing active space sizes to accurately deal with dynamical correlations. We address the requirements for future quantum hardware in order to make a universal quantum computer a successful and reliable tool for quantum computing enhanced computational materials science and chemistry, and identify open questions for further research. |
|||
| Improved reversible and quantum circuits for Karatsuba-based integer multiplication | TQC 2017 | regular | Alex Parent, Michele Mosca |
| A framework for qubit unitary synthesis | QIP 2016 | regular | ▸Vadym Kliuchnikov, Alex Bocharov, Jon Yard |
| Quantum Linear Network Coding as One-way Quantum Computation | TQC 2014 | regular | Niel de Beaudrap |
| On the Query Complexity of Perfect Gate Discrimination | TQC 2013 | regular | Giulio Chiribella, Giacomo Mauro D'Ariano |
| Easy and Hard Functions for the Boolean Hidden Shift Problem | TQC 2013 | regular | Andrew Childs, Robin Kothari, Maris Ozols |
|
Constructing quantum network coding schemes from classical nonlinear protocols ↗
|
QIP 2011 | regular | Hirotada Kobayashi, Francois Le Gall, Harumichi Nishimura |
|
On the additive and multiplicative adversary methods ↗
|
QIP 2011 | regular | Loïck Magnin, Jeremie Roland |
Committee service
| Conference | Committee | Position | Title |
|---|---|---|---|
| TQC 2019 | SC | member | — |
| TQC 2018 | SC | member | — |
| QIP 2017 | Local | member | — |
| TQC 2017 | SC | member | — |
| TQC 2016 | SC | member | — |
| TQC 2015 | SC | member | — |
| TQC 2014 | SC | member | — |
| TQC 2013 | SC | member | — |
| TQC 2012 | SC | member | — |
| TQC 2011 | PC | chair | — |
| QIP 2004 | Local | member | — |
Collaborators
| Co-author | Joint talks |
|---|---|
| Alex Bocharov | 1 |
| Alex Parent | 1 |
| Andrew Childs | 1 |
| Damian Steiger | 1 |
| Francois Le Gall | 1 |
| Giacomo Mauro D'Ariano | 1 |
| Giulio Chiribella | 1 |
| Guang Hao Low | 1 |
| Harumichi Nishimura | 1 |
| Hirotada Kobayashi | 1 |
| Jeremie Roland | 1 |
| Jon Yard | 1 |
| Loïck Magnin | 1 |
| Maris Ozols | 1 |
| Markus Reiher | 1 |
| Matthias Troyer | 1 |
| Michele Mosca | 1 |
| Niel de Beaudrap | 1 |
| Robin Kothari | 1 |
| Thomas Haner | 1 |