17
collaborators
2013–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
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Quantification of the energy consumption of entanglement distribution ↗
|
QCRYPT 2026 | regular | Karol Horodecki, Marek Winczewski, Leonard Sikorski, Mikołaj Czechlewski, Raja Yehia |
Inspired by environmental sciences, we develop a framework to quantify the energy needed to generate quantum entanglement via noisy quantum channels, focusing on the hardware-independent, i.e. fundamental cost. Within this framework, we define a measure of the minimal fundamental energy consumption rate per distributed entanglement (expressed in Joule per ebit). We then derive a lower bound on the energy cost of distributing a maximally entangled state via a quantum channel, which yields a quantitative estimate of energy investment per entangled bit for future quantum networks. We thereby show that irreversibility in entanglement theory implies a non-zero energy cost in standard entanglement distribution protocols. We further establish an upper bound on the fundamental energy consumption rate of entanglement distribution by determining the minimal energy required to implement quantum operations via classical control. To this end, we formulate the axioms for an energy cost measure and introduce a Hamiltonian model for classically-controlled quantum operations. The fundamental cost is then defined as the infimum energy over all such Hamiltonian protocols, with or without specific hardware constraints. The study of the energy cost of a quantum operation is general enough to be naturally applicable to quantum computing and is of independent interest. Finally, we evaluate the energy demands of three entanglement distillation protocols for photonic polarization qubits, finding that, due to entanglement irreversibility, their required energy exceeds the fundamental lower bound by many orders of magnitude. The introduced paradigm can be applied to other quantum resources, with appropriate changes depending on their nature. |
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8 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Quantification of the energy consumption of entanglement distribution | QIP 2026 | Karol Horodecki, Marek Winczewski, Leonard Sikorski, ▸Mikołaj Czechlewski, Raja Yehia |
| Energy Cost of a Quantum Operation: From Axioms to a Hamiltonian Framework | QIP 2026 | Karol Horodecki, ▸Marek Winczewski, Leonard Sikorski, Mikołaj Czechlewski, Raja Yehia |
| Quantification of the energy consumption of entanglement distribution | TQC 2026 | Karol Horodecki, Marek Winczewski, Leonard Sikorski, Mikołaj Czechlewski, Raja Yehia |
Inspired by environmental sciences, we develop a framework to quantify the energy needed to generate quantum entanglement via noisy quantum channels, focusing on the hardware-independent, i.e. fundamental cost. Within this framework, we define a measure of the minimal fundamental energy consumption rate per distributed entanglement (expressed in Joule per ebit). We then derive a lower bound on the energy cost of distributing a maximally entangled state via a quantum channel, which yields a quantitative estimate of energy investment per entangled bit for future quantum networks. We thereby show that irreversibility in entanglement theory implies a non-zero energy cost in standard entanglement distribution protocols. We further establish an upper bound on the fundamental energy consumption rate of entanglement distribution by determining the minimal energy required to implement quantum operations via classical control. To this end, we formulate the axioms for an energy cost measure and introduce a Hamiltonian model for classically-controlled quantum operations. The fundamental cost is then defined as the infimum energy over all such Hamiltonian protocols, with or without specific hardware constraints. The study of the energy cost of a quantum operation is general enough to be naturally applicable to quantum computing and is of independent interest. Finally, we evaluate the energy demands of three entanglement distillation protocols for photonic polarization qubits, finding that, due to entanglement irreversibility, their required energy exceeds the fundamental lower bound by many orders of magnitude. The introduced paradigm can be applied to other quantum resources, with appropriate changes depending on their nature. |
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| Catalysis in Charging Quantum Batteries | QIP 2023 | Ricard Ravell Rodriguez, Borhan Ahmadi, Shabir Barzanjeh, Robert Alicki, Pawel Horodecki |
| Decomposability and Convex Structure of Thermal Processes | QIP 2018 | Michał Horodecki |
| Simple scheme for encoding and decoding a qubit in unknown state for various topological codes | QIP 2015 | Justyna Lodyga, Andrzej Grudka, Michał Horodecki |
| Can communication power of separable correlations exceed that of entanglement resource? | QIP 2014 | Pawel Horodecki, Jan Tuziemski, Ryszard Horodecki |
| Long distance quantum communication over noisy networks. | QIP 2013 | Andrzej Grudka, Michał Horodecki, Pawel Horodecki, Lukasz Pankowski, Anna Przysiężna |
Collaborators
| Co-author | Joint talks |
|---|---|
| Karol Horodecki | 4 |
| Leonard Sikorski | 4 |
| Marek Winczewski | 4 |
| Mikołaj Czechlewski | 4 |
| Raja Yehia | 4 |
| Michał Horodecki | 3 |
| Pawel Horodecki | 3 |
| Andrzej Grudka | 2 |
| Anna Przysiężna | 1 |
| Borhan Ahmadi | 1 |
| Jan Tuziemski | 1 |
| Justyna Lodyga | 1 |
| Lukasz Pankowski | 1 |
| Ricard Ravell Rodriguez | 1 |
| Robert Alicki | 1 |
| Ryszard Horodecki | 1 |
| Shabir Barzanjeh | 1 |