8
collaborators
2023–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Complexity of Fermionic 2-SAT | TQC 2026 | regular ▸ presenter | Barbara Maria Terhal |
We introduce the fermionic satisfiability problem, Fermionic k-SAT: this is the problem of deciding whether there is a fermionic state in the null-space of a collection of fermionic, parity-conserving, projectors on n fermionic modes, where each fermionic projector involves at most k fermionic modes. We prove that this problem can be solved efficiently classically for k = 2. In addition, we show that deciding whether there exists a satisfying assignment with a given fixed particle number parity can also be done efficiently classically for Fermionic 2-SAT: this problem is a quantum-fermionic extension of asking whether a classical 2-SAT problem has a solution with a given Hamming weight parity. We also prove that deciding whether there exists a satisfying assignment for particle-number-conserving Fermionic 2-SAT for some given particle number is NP-complete. Complementary to this, we show that Fermionic 9-SAT is QMA_1-hard. |
|||
| Optimizing fermionic Hamiltonians with classical interactions | TQC 2026 | regular ▸ presenter | Barbara Maria Terhal, Yaroslav Herasymenko |
We consider the optimization problem (ground energy search) for fermionic Hamiltonians with classical interactions. This QMA-hard problem is motivated by the Coulomb electron-electron interaction being diagonal in the position basis, a fundamental fact that underpins electronic-structure Hamiltonians in quantum chemistry and condensed matter. We prove that fermionic Gaussian states achieve an approximation ratio of at least 1/3 for such Hamiltonians, independent of sparsity. This shows that classical interactions are sufficient to prevent the vanishing Gaussian approximation ratio observed in SYK-type models. We also give efficient semi-definite programming algorithms for Gaussian approximations to several families of traceless and positive-semidefinite classically interacting Hamiltonians, with the ability to enforce a fixed particle number. The technical core of our results is the concept of a Gaussian blend, a construction for Gaussian states via mixtures of covariance matrices. |
|||
| Solving free fermion problems on a quantum computer | QIP 2025 | regular ▸ presenter | Daan Lenterman, Barbara Maria Terhal, Yaroslav Herasymenko |
| Optimizing sparse fermionic Hamiltonians | QIP 2023 | regular | ▸Yaroslav Herasymenko, Jonas Helsen, Barbara Maria Terhal |
4 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Quantum Phase Estimation without Controlled Unitaries | QIP 2025 | Raul Garcia-Patron Sanchez, Laura Clinton, Toby Cubitt, Ashley Montanaro |
| Complexity of Fermionic 2-SAT | TQC 2024 | Barbara Maria Terhal |
| Spectral estimation for Hamiltonians: a comparison between classical imaginary-time evolution and quantum real-time evolution | QIP 2023 | Jonas Helsen, Barbara Maria Terhal |
| Spectral estimation for Hamiltonians: a comparison between classical imaginary-time evolution and quantum real-time evolution | TQC 2023 | Jonas Helsen, Barbara Maria Terhal |
Collaborators
| Co-author | Joint talks |
|---|---|
| Barbara Maria Terhal | 7 |
| Jonas Helsen | 3 |
| Yaroslav Herasymenko | 3 |
| Ashley Montanaro | 1 |
| Daan Lenterman | 1 |
| Laura Clinton | 1 |
| Raul Garcia-Patron Sanchez | 1 |
| Toby Cubitt | 1 |