6
collaborators
2020–2021
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Sub-exponential rate versus distance with time multiplexed quantum repeaters | QCRYPT 2021 | Prajit Dhara, Hari Krovi, Saikat Guha |
Shared entanglement between two remote parties is a key resource for Quantum Cryptography. Quantum communications capacity using direct transmission over length-$L$ optical fiber scales as $R \sim e^{-\alpha L}$, where $\alpha$ is the fiber's loss coefficient. The rate achieved using a linear chain of quantum repeaters equipped with quantum memories, probabilistic Bell state measurements (BSMs) and switches used for spatial multiplexing, but no quantum error correction was shown to surpass the direct-transmission capacity. However, this rate still decays exponentially with the end-to-end distance, viz., $R \sim e^{-s{\alpha L}}$, with $s < 1$. We show that the introduction of temporal multiplexing---i.e., the ability to perform BSMs among qubits at a repeater node that were successfully entangled with qubits at distinct neighboring nodes at {\em different} time steps---leads to a sub-exponential rate-vs.-distance scaling, i.e., $R \sim e^{-t\sqrt{\alpha L}}$, which is not attainable with just spatial or spectral multiplexing. We evaluate analytical upper and lower bounds to this rate and obtain the exact rate by numerically optimizing the time-multiplexing block length and the number of repeater nodes. We further demonstrate that incorporating losses in the optical switches used to implement time-multiplexing degrades the rate-vs.-distance performance, eventually falling back to exponential scaling for very lossy switches. We also examine models for quantum memory decoherence and describe optimal regimes of operation to preserve the desired boost from temporal multiplexing. QM decoherence is seen to be more detrimental to the repeater's performance over switching losses. |
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| Entanglement generation in a quantum network at distance-independent rates | QCRYPT 2020 | Mihir Pant, Dirk Englund, Don Towsley, Saikat Guha |
We develop a protocol that allows a pair of users to sift a secret key starting from shared variable-length Greenberger-Horne-Zeilinger (GHZ) states. It is an extension of the BBM’92 protocol which relies on measurements in the matching basis for entanglement witness. We then design an entanglement generation scheme over a quantum network that equips the quantum key generation protocol to achieve key rates that are independent of the distance between the two users. The key new insight in our protocol is to allow a repeater node to use n-qubit GHZ projective measurements that can fuse n successful entangled links, i.e., two-qubit entangled Bell pairs shared across network edges, incident at that node, into an n-qubit GHZ state shared by the far nodes of those edges. If we allow even 3-fusions at the nodes, we find by developing a connection to a modified version of the site-bond percolation problem that despite lossy (hence probabilistic) link-level entanglement generation, and probabilistic success of the fusion measurements at nodes, one can generate entanglement between end two parties at a rate that stays constant as the distance between them increases. This is not possible to attain with any (non-error-corrected) quantum networking protocol using Bell measurements alone. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Saikat Guha | 2 |
| Dirk Englund | 1 |
| Don Towsley | 1 |
| Hari Krovi | 1 |
| Mihir Pant | 1 |
| Prajit Dhara | 1 |