Few-qubit quantum refrigerator for cooling a multi-qubit system
- URL: http://arxiv.org/abs/2011.13973v1
- Date: Fri, 27 Nov 2020 19:25:23 GMT
- Title: Few-qubit quantum refrigerator for cooling a multi-qubit system
- Authors: Onat Ar{\i}soy and \"Ozg\"ur E. M\"ustecapl{\i}o\u{g}lu
- Abstract summary: We consider a central qubit coupled to $N$ ancilla qubits in a so-called spin-star model as our quantum refrigerator.
The colder central qubit is then proposed to be used as the refrigerant interface to cool down general quantum many-qubit systems.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We propose to use a few-qubit system as a compact quantum refrigerator for
cooling an interacting multi-qubit system. We specifically consider a central
qubit coupled to $N$ ancilla qubits in a so-called spin-star model as our
quantum refrigerator. We first show that if the interaction between the qubits
is of the longitudinal and ferromagnetic Ising model form, the central qubit is
colder than the environment. The colder central qubit is then proposed to be
used as the refrigerant interface of the quantum refrigerator to cool down
general quantum many-qubit systems. We discuss a simple refrigeration cycle,
considering the operation cost and cooling efficiency, which can be controlled
by $N$ and the qubit-qubit interaction strength. Besides, bounds on the
achievable temperature are established. Such few-qubit compact quantum
refrigerators can be significant to reduce dimensions of quantum technology
applications, can be easy to integrate into all-qubit systems, and can increase
the speed and power of quantum computing and thermal devices.
Related papers
- Simultaneous cooling of qubits via a quantum absorption refrigerator and beyond [0.0]
We propose an engineering of interaction Hamiltonian using operators on different subspaces of the full Hilbert space of the system labelled by different magnetizations.
We demonstrate, using the local as well as global quantum master equations, that a set of target qubits can be cooled simultaneously using these interaction Hamiltonians.
We also extend the design to a star network of qubits interacting via Heisenberg interaction among each other, kept in contact with either three, or two heat baths, and discuss cooling of a set of target qubits using this device.
arXiv Detail & Related papers (2024-10-21T10:55:42Z) - Fast, Accurate, and Local Temperature Control Using Qubits [0.0]
We present a proposal for fast, accurate, and local temperature control using qubits.
We show how a quantum system at subkelvin temperatures can be significantly and accurately cooled on a nanosecond timescale.
Our proposal can potentially be realized with superconducting flux qubits, charge qubits, or spin qubits.
arXiv Detail & Related papers (2024-10-07T07:16:27Z) - Quantum Thermodynamics applied for Quantum Refrigerators cooling down a
qubit [0.0]
We consider two types of quantum refrigerators: (1) one extra qubit with frequent pulse operations and (2) two extra qubits without them.
Our results are useful to design a high-performance quantum refrigerator cooling down a qubit.
arXiv Detail & Related papers (2022-10-06T05:12:43Z) - Implementation of a two-stroke quantum heat engine with a collisional
model [50.591267188664666]
We put forth a quantum simulation of a stroboscopic two-stroke thermal engine in the IBMQ processor.
The system consists of a quantum spin chain connected to two baths at their boundaries, prepared at different temperatures using the variational quantum thermalizer algorithm.
arXiv Detail & Related papers (2022-03-25T16:55:08Z) - Quantum thermodynamic methods to purify a qubit on a quantum processing
unit [68.8204255655161]
We report on a quantum thermodynamic method to purify a qubit on a quantum processing unit equipped with identical qubits.
Our starting point is a three qubit design that emulates the well known two qubit swap engine.
We implement it on a publicly available superconducting qubit based QPU, and observe a purification capability down to 200 mK.
arXiv Detail & Related papers (2022-01-31T16:13:57Z) - Quantum cooling activated by coherently-controlled thermalisation [0.0]
We show that it is possible to boost the heat extraction ability of the ICO fridge by applying N identical thermalising channels in a superposition of N cyclic causal orders.
We also provide an experimental simulatable quantum cooling protocol with coherently-controlled thermalising channels.
arXiv Detail & Related papers (2022-01-18T13:18:39Z) - Efficient criteria of quantumness for a large system of qubits [58.720142291102135]
We discuss the dimensionless combinations of basic parameters of large, partially quantum coherent systems.
Based on analytical and numerical calculations, we suggest one such number for a system of qubits undergoing adiabatic evolution.
arXiv Detail & Related papers (2021-08-30T23:50:05Z) - A scalable helium gas cooling system for trapped-ion applications [51.715517570634994]
A modular cooling system is presented for use with multiple ion-trapping experiments simultaneously.
The cooling system is expected to deliver a net cooling power of 111 W at 70 K to up to four experiments.
arXiv Detail & Related papers (2021-06-14T16:37:54Z) - Taking the temperature of a pure quantum state [55.41644538483948]
Temperature is a deceptively simple concept that still raises deep questions at the forefront of quantum physics research.
We propose a scheme to measure the temperature of such pure states through quantum interference.
arXiv Detail & Related papers (2021-03-30T18:18:37Z) - Multi-spin counter-diabatic driving in many-body quantum Otto
refrigerators [0.16799377888527683]
We present a finite-time many-body quantum refrigerator that yields finite cooling power at high coefficient of performance.
We employ multi-spin CD driving and numerically investigate the scaling behavior of the refrigeration performance with system size.
arXiv Detail & Related papers (2020-08-21T06:35:59Z) - Reservoir engineering with arbitrary temperatures for spin systems and
quantum thermal machine with maximum efficiency [50.591267188664666]
Reservoir engineering is an important tool for quantum information science and quantum thermodynamics.
We employ this technique to engineer reservoirs with arbitrary (effective) negative and positive temperatures for a single spin system.
arXiv Detail & Related papers (2020-01-28T00:18:00Z)
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.