Experimental realization of deterministic and selective photon addition
in a bosonic mode assisted by an ancillary qubit
- URL: http://arxiv.org/abs/2212.12079v1
- Date: Thu, 22 Dec 2022 23:32:21 GMT
- Title: Experimental realization of deterministic and selective photon addition
in a bosonic mode assisted by an ancillary qubit
- Authors: Marina Kudra, Tahereh Abad, Mikael Kervinen, Axel M. Eriksson,
Fernando Quijandr\'ia, Per Delsing, Simone Gasparinetti
- Abstract summary: Bosonic quantum error correcting codes are primarily designed to protect against single-photon loss.
Error correction requires a recovery operation that maps the error states -- which have opposite parity -- back onto the code states.
Here, we realize a collection of photon-number-selective, simultaneous photon addition operations on a bosonic mode.
- Score: 50.591267188664666
- License: http://creativecommons.org/licenses/by-nc-nd/4.0/
- Abstract: Bosonic quantum error correcting codes are primarily designed to protect
against single-photon loss. To correct for this type of error, one can encode
the logical qubit in code spaces with a definite photon parity, such as cat
codes or binomial codes. Error correction requires a recovery operation that
maps the error states -- which have opposite parity -- back onto the code
states. Here, we realize a collection of photon-number-selective, simultaneous
photon addition operations on a bosonic mode, a microwave cavity, assisted by a
superconducting qubit. These operations are implemented as two-photon
transitions that excite the cavity and the qubit at the same time. The
additional degree of freedom of the qubit makes it possible to implement a
coherent, unidirectional mapping between spaces of opposite photon parity. We
present the successful experimental implementation of the drives and the phase
control they enable on superpositions of Fock states. The presented technique,
when supplemented with qubit reset, is suitable for autonomous quantum error
correction in bosonic systems, and, more generally, opens the possibility to
realize a range of non-unitary transformations on a bosonic mode.
Related papers
- Passive photonic CZ gate with two-level emitters in chiral multi-mode waveguide QED [41.94295877935867]
We design a passive conditional gate between co-propagating photons using an array of only two-level emitters.
The key resource is to harness the effective photon-photon interaction induced by the chiral coupling of the emitter array to two waveguide modes.
We show how to harness this non-linear phase shift to engineer a conditional, deterministic photonic gate in different qubit encodings.
arXiv Detail & Related papers (2024-07-08T18:00:25Z) - Deterministic generation of concatenated graph codes from quantum emitters [0.0]
Concatenation of a fault-tolerant construction with a code able to efficiently correct loss is a promising approach to achieve this.
We propose schemes for generatingd graph codes using multi-photon emission from two quantum emitters or a single quantum emitter coupled to a memory.
We show that these schemes enable fault-tolerant fusion-based quantum regimes in practical computation with high photon loss and standard fusion gates.
arXiv Detail & Related papers (2024-06-24T14:44:23Z) - Protecting the quantum interference of cat states by phase-space
compression [45.82374977939355]
Cat states with their unique phase-space interference properties are ideal candidates for understanding quantum mechanics.
They are highly susceptible to photon loss, which inevitably diminishes their quantum non-Gaussian features.
Here, we protect these non-Gaussian features by compressing the phase-space distribution of a cat state.
arXiv Detail & Related papers (2022-12-02T16:06:40Z) - All-optical quantum computing using cubic phase gates [0.0]
We show how elements of all-optical, universal, and fault-tolerant quantum computation can be implemented.
Our approach is based on a decomposition technique combining exact gate decompositions and approximate Trotterization.
arXiv Detail & Related papers (2022-11-16T17:21:30Z) - Amplification of cascaded downconversion by reusing photons with a
switchable cavity [62.997667081978825]
We propose a scheme to amplify triplet production rates by using a fast switch and a delay loop.
Our proof-of-concept device increases the rate of detected photon triplets as predicted.
arXiv Detail & Related papers (2022-09-23T15:53:44Z) - Experimental Realization and Characterization of Stabilized Pair
Coherent States [4.486044407450978]
PCS is an interesting class of non-Gaussian continuous-variable entangled state.
PCS is at the heart of a promising quantum error correction code: the pair cat code.
We report an experimental demonstration of the pair coherent state of microwave photons in two superconducting cavities.
arXiv Detail & Related papers (2022-09-23T15:24:25Z) - Experimental Multi-state Quantum Discrimination in the Frequency Domain
with Quantum Dot Light [40.96261204117952]
In this work, we present the experimental realization of a protocol employing a time-multiplexing strategy to optimally discriminate among eight non-orthogonal states.
The experiment was built on a custom-designed bulk optics analyser setup and single photons generated by a nearly deterministic solid-state source.
Our work paves the way for more complex applications and delivers a novel approach towards high-dimensional quantum encoding and decoding operations.
arXiv Detail & Related papers (2022-09-17T12:59:09Z) - All-optical Quantum State Engineering for Rotation-symmetric Bosonic
States [0.0]
We propose and analyze a method to generate a variety of non-Gaussian states using coherent photon subtraction.
Our method can be readily implemented with current quantum photonic technologies.
arXiv Detail & Related papers (2021-05-23T22:43:23Z) - Engineering continuous and discrete variable quantum vortex states by
nonlocal photon subtraction in a reconfigurable photonic chip [0.0]
We study the production of entangled two- and N-mode quantum states of light in optical waveguides.
We propose a quantum photonic circuit that produces a reconfigurable superposition of photon subtraction on two single-mode squeezed states.
arXiv Detail & Related papers (2020-04-11T11:11:16Z) - Hardware-Encoding Grid States in a Non-Reciprocal Superconducting
Circuit [62.997667081978825]
We present a circuit design composed of a non-reciprocal device and Josephson junctions whose ground space is doubly degenerate and the ground states are approximate codewords of the Gottesman-Kitaev-Preskill (GKP) code.
We find that the circuit is naturally protected against the common noise channels in superconducting circuits, such as charge and flux noise, implying that it can be used for passive quantum error correction.
arXiv Detail & Related papers (2020-02-18T16:45:09Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.