13
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Fullqubit alchemist: Quantum algorithm for alchemical free energy calculations | QIP 2026 | ▸Po-Wei Huang, Gregory Boyd, Gian-Luca R. Anselmetti, Nikolaj Moll, Raffaele Santagati, Michael Streif, Benjamin Ries, Hamza Jnane, Daniel Marti-Dafcik, Sophia Simon, Nathan Wiebe, Thomas Bromley, Balint Koczor |
| Dividing and Conquering the Van Vleck Catastrophe | QIP 2026 | ▸Sophia Simon, Gian-Luca R. Anselmetti, Raffaele Santagati, Nikolaj Moll, Michael Streif, Nathan Wiebe |
| Fullqubit alchemist: Quantum algorithm for alchemical free energy calculations | TQC 2026 | ▸Po-Wei Huang, Gregory Boyd, Gian-Luca R. Anselmetti, Nikolaj Moll, Raffaele Santagati, Michael Streif, Benjamin Ries, Daniel Marti-Dafcik, Hamza Jnane, Sophia Simon, Nathan Wiebe, Thomas Bromley, Balint Koczor |
Accurately computing the free energies of biological processes is a cornerstone of computer-aided drug design, but it is a daunting task. The need to sample vast conformational spaces and account for entropic contributions makes the estimation of binding free energies very expensive. While classical methods, such as thermodynamic integration and alchemical free energy calculations, have significantly contributed to reducing computational costs, they still face limitations in terms of efficiency and scalability. We tackle this through a quantum algorithm for the estimation of free energy differences by adapting the existing Liouvillian approach and introducing several key algorithmic improvements. We directly implement the Liouvillian operator and provide an efficient description of electronic forces acting on both nuclear and electronic particles on the quantum ground state potential energy surface. This leads to super-polynomial runtime scaling improvements in the precision of our Liouvillian simulation approach and quadratic improvements in the scaling with the number of particles relative to prior quantum algorithms. Second, our algorithm calculates free energy differences via a fully quantum implementation of thermodynamic integration and alchemy, thereby foregoing expensive entropy estimation subroutines used in prior works. Our results open new avenues towards the application of quantum computers in drug discovery. |
||
| Improved precision scaling for simulating coupled quantum-classical dynamics | QIP 2024 | Sophia Simon, Raffaele Santagati, Nikolaj Moll, Michael Streif, Nathan Wiebe |
Collaborators
| Co-author | Joint talks |
|---|---|
| Michael Streif | 4 |
| Nathan Wiebe | 4 |
| Nikolaj Moll | 4 |
| Raffaele Santagati | 4 |
| Sophia Simon | 4 |
| Gian-Luca R. Anselmetti | 3 |
| Balint Koczor | 2 |
| Benjamin Ries | 2 |
| Daniel Marti-Dafcik | 2 |
| Gregory Boyd | 2 |
| Hamza Jnane | 2 |
| Po-Wei Huang | 2 |
| Thomas Bromley | 2 |