Instytut Podstawowych Problemów Techniki
Polskiej Akademii Nauk

Partnerzy

Moein Naseri


Doktorat
2025-03-10 Zasoby Kwantowe w Technologiach Kwantowych  (Uniwersytet Warszawski)
promotor -- dr hab. Alexander Streltsov,
 

Ostatnie publikacje
1.  Ganardi R., Masajada P., Naseri M., Streltsov A., Local Purity Distillation in Quantum Systems: Exploring the Complementarity Between Purity and Entanglement, Quantum, ISSN: 2521-327X, DOI: 10.22331/q-2025-03-20-1666, Vol.9, No.1666, pp.1-10, 2025140p.
2.  Naseri M., Macchiavello C., Bruß D., Horodecki P., Streltsov A., Quantum speed limits for change of basis, NEW JOURNAL OF PHYSICS, ISSN: 1367-2630, DOI: 10.1088/1367-2630/ad25a5, Vol.26, pp.023052-023052, 2024140p.
3.  Scalici M., Naseri M., Streltsov A., Coherence Generation with Hamiltonians, Quantum Information and Computation, ISSN: 1533-7146, Vol.24, No.7-8, pp.565-575, 2024

Streszczenie:
We explore methods to generate quantum coherence through unitary evolutions, by introducing and studying the coherence generating capacity of Hamiltonians. This quantity is defined as the maximum derivative of coherence that can be achieved by a Hamiltonian. By adopting the relative entropy of coherence as our figure of merit, we evaluate the maximal coherence generating capacity with the constraint of a bounded Hilbert- Schmidt norm for the Hamiltonian. Our investigation yields closed-form expressions for both Hamiltonians and quantum states that induce the maximal derivative of coherence under these conditions. Specifically, for qubit systems, we solve this problem comprehensively for any given Hamiltonian, identifying the quantum states that lead to the largest coherence derivative induced by the Hamiltonian. Our investigation enables a precise identification of conditions under which quantum coherence is optimally enhanced, offering valuable insights for the manipulation and control of quantum coherence in quantum systems.

Słowa kluczowe:
Resource Generation, Quantum Coherence, Quantum Control

Afiliacje autorów:
Scalici M. - inna afiliacja
Naseri M. - IPPT PAN
Streltsov A. - IPPT PAN
100p.
4.  Naseri M., Tulja Varun K., Suchetana G., Fellous-Asiani M., Streltsov A., Entanglement and coherence in the Bernstein-Vazirani algorithm, Physical Review A, ISSN: 2469-9926, DOI: 10.1103/PhysRevA.106.062429, No.106, pp.062429-1-062429-13, 2022

Streszczenie:
Quantum algorithms can outperform their classical counterparts in various tasks, the most prominent example being Shor's algorithm for efficient prime factorization on a quantum computer. It is clear that one of the reasons for the speedup is the superposition principle of quantum mechanics, which allows a quantum processor to be in a superposition of different states at the same time. While such a superposition can lead to entanglement across different qubits of the processors, there also exist quantum algorithms that outperform classical ones using superpositions of individual qubits without entangling them. As an example, the Bernstein-Vazirani algorithm allows one to determine a bit string encoded into an oracle. While the classical version of the algorithm requires multiple calls of the oracle to learn the bit string, a single query of the oracle is enough in the quantum case. In this article, we analyze in detail the quantum resources in the Bernstein-Vazirani algorithm. For this, we introduce and study its probabilistic version, where the goal is to guess the bit string after a single call of the oracle. We show that in the absence of entanglement, the performance of the algorithm is directly related to the amount of quantum coherence in the initial state. We further demonstrate that a large amount of entanglement in the initial state prevents the algorithm from achieving optimal performance. We also apply our methods to quantum computation with mixed states, proving that pseudopure states achieve optimal performance for a given purity in the Bernstein-Vazirani algorithm. We further investigate quantum resources in the one clean qubit model, showing that the model can exhibit speedup over any known classical algorithm even with an arbitrarily little amount of multipartite entanglement, general quantum correlations, and coherence.

Afiliacje autorów:
Naseri M. - inna afiliacja
Tulja Varun K. - inna afiliacja
Suchetana G. - inna afiliacja
Fellous-Asiani M. - inna afiliacja
Streltsov A. - inna afiliacja
100p.

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