Minimizing Dissipation in Multiqubit Erasure via Engineered Quantum Reservoirs
| dc.contributor.advisor | Perarnau Llobet, Martí | |
| dc.contributor.author | Arias Rangel, Sergio | |
| dc.date.accessioned | 2026-09-24T08:13:17Z | |
| dc.date.available | 2026-09-24T08:13:17Z | |
| dc.date.issued | 2026-09 | |
| dc.description | Màster Oficial de Ciència i Tecnologia Quàntiques / Quantum Science and Technology, Facultat de Física, Universitat de Barcelona. Curs: 2025-2026. Tutor: Martí Perarnau Llobet | |
| dc.description.abstract | The erasure of quantum information is governed by two fundamental thermodynamic bounds: Landauer’s principle, which establishes the absolute minimum energetic cost of resetting a state, and Nernst’s unattainability principle, which dictates that perfect cooling to absolute zero entropy requires infinite resources. Under finite constraints, conventional cooling protocols utilizing thermal baths composed of n non-interacting particles are bottlenecked by a linear dissipation barrier (O(1/n)). In this thesis, we establish the ultimate thermodynamic limits of finite-resource multiqubit erasure and introduce the most thermodynamically efficient cooling protocol currently known. Building upon the max-cooling framework—a global unitary operation that systematically sorts the eigenvalues of the joint system-bath state to pack the highest probability mass into the target’s ground state—we engineer a bath Hamiltonian with specific, target-dependent degeneracies for arbitrary m-qubit systems. This collective protocol achieves an optimal asymptotic entropy production scaling of Σ = O(m2/n2), successfully saturating the scaling of the fundamental theoretical lower bound. This degeneracy-optimized approach strictly outperforms both standard non-interacting reservoirs and the best-known protocol for the independent cooling of single qubits using a reservoir of interacting particles (O(m3/n2)). Furthermore, we establish that surpassing conventional dissipation barriers requires an operational threshold of just n ≥ 2m2 bath particles to achieve this optimal scaling. | |
| dc.format.extent | 40 p. | |
| dc.format.mimetype | application/pdf | |
| dc.identifier.uri | https://hdl.handle.net/2445/231682 | |
| dc.language.iso | eng | |
| dc.rights | cc-by-nc-nd (c) Arias Rangel, Sergio, 2026 | |
| dc.rights.accessRights | info:eu-repo/semantics/openAccess | |
| dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/4.0/ | |
| dc.subject.classification | Informació quàntica | |
| dc.subject.classification | Qbit | |
| dc.subject.classification | THUB3 | |
| dc.subject.classification | Treballs de fi de màster | |
| dc.subject.other | Quantum information | |
| dc.subject.other | Qubit | |
| dc.subject.other | Subj3 | |
| dc.subject.other | Master's thesis | |
| dc.title | Minimizing Dissipation in Multiqubit Erasure via Engineered Quantum Reservoirs | |
| dc.type | info:eu-repo/semantics/masterThesis |
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