Squeezing in conditional measurement setup with coherent input
- URL: http://arxiv.org/abs/2412.19164v1
- Date: Thu, 26 Dec 2024 10:49:16 GMT
- Title: Squeezing in conditional measurement setup with coherent input
- Authors: Devibala Esakkimuthu, Basherrudin Mahmud Ahmed A,
- Abstract summary: Conditional measurement scheme which employs linear optical elements and photon detection is the fertile ground for nonclassical state generation.
We show that by tuning the parameters involved in the setup, we can achieve optimal squeezing from the setup.
- Score: 0.0
- License:
- Abstract: Conditional Measurement scheme which employs linear optical elements and photon detection is the fertile ground for nonclassical state generation. We consider a simple setup that requires a coherent state and a number state as inputs of the beam splitter, and a photon detector. We show that by tuning the parameters involved in the setup, we can achieve optimal squeezing from the setup. This is facilitated by writing the output state of the conditional measurement as displaced qudits. Setting aside displacement which plays no role in squeezing, the finite-dimensional representation makes it possible to calculate the maximal amount of squeezing. By fixing the detection at one photon level irrespective of any number state input and carefully chosen coherent parameter and beam splitter reflectivity values, one can reach the maximal squeezing at least for lower number state inputs. This is in contrast to the earlier attempts in atom field interaction models etc., where the squeezing obtained was far from saturation. To accommodate the experimental imperfections, we consider the impure nature of the photon source and detector inefficiency.
Related papers
- Beam splitters as controlled-Z gate for hybrid state [0.0]
Scheme based on adding a nonlocal photon and subtracting some number of photons to entangle the initial single-mode squeezed vacuum.
We show sufficient robustness of the generated entanglement under photon number resolving detection with practical quantum efficiency.
arXiv Detail & Related papers (2025-02-19T06:28:40Z) - Quantum State Characterization Using Measurement Configurations Inspired
by Homodyne Detection [0.0]
In quantum information processing, states of interest are in well-separated modes, corresponding to a pulsed configuration with one relevant LO mode per measurement.
We theoretically investigate what can be learned about the unknown optical state by counting photons in one or both outgoing paths after the beam splitter (BS)
When the BS acts identically on all matching modes it is possible to determine the content of the unknown optical state in the mode matching the LO conditional on each number of photons.
arXiv Detail & Related papers (2023-05-30T20:20:59Z) - Optimal Settings For Amplification And Estimation Of Small Effects In
Postselected Ensembles [0.0]
We show that the postselection on a quantum system recovers a completely hidden interference effect in the measurement apparatus.
Using single photons, it is investigated how a postselected photon can impart a $pi$ phase shift to a photon interacting weakly with it in a nonlinear optical medium.
arXiv Detail & Related papers (2023-03-17T06:01:19Z) - Experimental realization of deterministic and selective photon addition
in a bosonic mode assisted by an ancillary qubit [50.591267188664666]
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.
arXiv Detail & Related papers (2022-12-22T23:32:21Z) - Quantum state tomography with tensor train cross approximation [84.59270977313619]
We show that full quantum state tomography can be performed for such a state with a minimal number of measurement settings.
Our method requires exponentially fewer state copies than the best known tomography method for unstructured states and local measurements.
arXiv Detail & Related papers (2022-07-13T17:56:28Z) - Experimentally determining the incompatibility of two qubit measurements [55.41644538483948]
We describe and realize an experimental procedure for assessing the incompatibility of two qubit measurements.
We demonstrate this fact in an optical setup, where the qubit states are encoded into the photons' polarization degrees of freedom.
arXiv Detail & Related papers (2021-12-15T19:01:44Z) - Optimal interferometry for Bell$-$nonclassicality by a
vacuum$-$one$-$photon qubit [0.0]
Bell nonclassicality of a single photon superposition in two modes is one of the most striking nonclassical phenomena discussed in the context of quantum physics.
We show how to robustly violate local realism within the weak-field homodyne measurement scheme for textitany superposition of one photon with vacuum.
arXiv Detail & Related papers (2021-09-21T13:37:07Z) - Remote Phase Sensing by Coherent Single Photon Addition [58.720142291102135]
We propose a remote phase sensing scheme inspired by the high sensitivity of the entanglement produced by coherent multimode photon addition on the phase set in the remote heralding apparatus.
We derive the optimal observable to perform remote phase estimation from heralded quadrature measurements.
arXiv Detail & Related papers (2021-08-26T14:52:29Z) - Bosonic field digitization for quantum computers [62.997667081978825]
We address the representation of lattice bosonic fields in a discretized field amplitude basis.
We develop methods to predict error scaling and present efficient qubit implementation strategies.
arXiv Detail & Related papers (2021-08-24T15:30:04Z) - Conditional preparation of non-Gaussian quantum optical states by
mesoscopic measurement [62.997667081978825]
Non-Gaussian states of an optical field are important as a proposed resource in quantum information applications.
We propose a novel approach involving displacement of the ancilla field into the regime where mesoscopic detectors can be used.
We conclude that states with strong Wigner negativity can be prepared at high rates by this technique under experimentally attainable conditions.
arXiv Detail & Related papers (2021-03-29T16:59:18Z) - Single Photon Randomness based on a Defect Center in Diamond [1.0677593299861892]
A single photon impinges onto a beam splitter and is then detected by single photon detectors at one of the two output paths.
When the two output modes are observed by a single photon detector, the generated clicks can be interpreted as ones and zeros.
We implement such a random bit generator based on single photons from a defect center in diamond.
arXiv Detail & Related papers (2020-07-15T07:43:16Z)
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.