Measurement and Control in Open Quantum Systems
Measurement and Control in Open Quantum Systems
批准号:
1607156
负责人:
Kater Murch
金额:
$31.95万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-15 至 2020-07-31
中文摘要
根据量子力学,粒子没有明确的属性,如位置和动量,而是由一个以概率形式数学描述它们的复值波函数来描述。量子粒子的波动性质意味着这些粒子可以以看似不同的状态的叠加形式存在,例如,一个量子粒子可以同时位于两个地方,或者朝着两个不同的方向行进,或者占据两个不同能级的叠加。该波函数的演化服从1925年建立的薛定谔方程。自其形成以来,薛定谔方程已被应用于理解原子和分子的性质以及化学和材料的基础。然而,薛定谔方程只适用于孤立的量子系统。如果要以适当的精度测量量子粒子的性质,即使粒子处于状态叠加,也可能得到明确的答案。因此,测量动作将波函数从初始叠加折叠到确定状态。这种坍缩过程不能用薛定谔方程来描述,自量子理论起源以来,测量的开放量子系统的演化与理论的协调一直是激烈辩论和研究的主题。这个项目的目的是加深我们对量子测量的理解,并利用测量相互作用来控制量子粒子的演化。该方法将使用微观超导电路作为人造原子,并将这些原子与微波光相互作用,创建开放的量子系统。该团队将进行一系列实验,探索测量过程以及如何使用测量来控制量子进化,量子进化是新兴量子技术的重要组成部分。该项目将利用制造的量子系统(超导人造原子)和腔量子电动力学物理来创建对量子环境具有前所未有的控制能力的系统。该团队将进行一系列实验,探索量子测量、量子控制和基本对称性的物理学。第一个实验考察了量子信息和经典信息之间的界限。几个光子信号将与人造原子的能态纠缠,然后用超导参量放大器可控地放大(或压缩),扩大了少光子指针态的希尔伯特空间。然后,第二个放大器将被用来探测放大的指针态和原子之间产生的纠缠。第二个实验考察了辐射衰变的过程,以及如何利用探测自发发射的光子来控制原子态的演变。参数放大器将用于对量子发射器发射的辐射进行零差测量。该团队将研究如何使用零差测量角度的选择来引导发射器状态的演变。第三个项目将创建一个由两个人造原子组成的系统,表现出时空反转对称性,以研究宇称-时间对称性破缺相变。宇称-时间对称系统将通过量子储存库工程来创建,导致一个原子损失,另一个原子增加。系统的稳态将通过光谱学和量子态层析成像作为两个原子之间耦合的函数来探测。
英文摘要
According to quantum mechanics, particles do not have definite properties such as position and momentum, but are instead described by a "complex valued wavefunction" which describes them mathematically in terms of probabilities. The wave nature of quantum particles means that these particles can exist in superpositions of seemingly disparate states, for example a quantum particle could be in two places at once, or heading in two different directions, or occupy a superposition of two different energy levels. The evolution of this wavefunction obeys the Schrödinger equation which was formulated in 1925. Since its formulation, the Schrödinger equation has been applied to understand the properties of atoms and molecules and the basis for chemistry and materials. Yet, the Schrödinger equation only applies to isolated quantum systems. If one is to measure the properties of a quantum particle with suitable precision, a definite answer may result even if the particle is in a superposition of states. Thus the act of measurement collapses the wavefunction from an initial superposition to a definite state. This collapse process cannot be described by the Schrödinger equation and reconciling the evolution of measured "open" quantum systems with the theory has been a topic of intense debate and research since the origins of quantum theory. The goal of this project is to deepen our understanding of quantum measurement and to harness the measurement interaction to control the evolution of quantum particles. The approach will use microscopic superconducting circuits as artificial atoms and the interaction of these atoms with microwave light to create open quantum systems. The team will conduct a series of experiments that explore the measurement process and how measurement can be used to control quantum evolution, an important component of emerging quantum-based technologies.This project will utilize fabricated quantum systems (superconducting artificial atoms) and the physics of cavity quantum electrodynamics to create systems with unprecedented control of the quantum environment. The team will undertake a series of experiments that explore the physics of quantum measurement, quantum control, and fundamental symmetries. The first experiment examines the boundary between quantum and classical information. A few photon signal will be entangled with the energy states of an artificial atom and then controllably amplified (or squeezed) with a superconducting parametric amplifier, enlarging the Hilbert space of the few photon pointer state. A second amplifier will then be used to probe the resulting entanglement between the amplified pointer state and atom. The second experiment examines the process of radiative decay and how detection of spontaneously emitted photons can be used to control the evolution of the atomic states. A parametric amplifier will be used to perform homodyne measurement of radiation emitted from a quantum emitter. The team will study how the choice of homodyne measurement angle can be used to steer the evolution of the emitter's state. The third project will create a system of two artificial atoms that exhibits space-time inversion symmetry to study the parity-time symmetry breaking phase transition. The parity-time symmetric system will be created through quantum reservoir engineering, inducing loss for one atom and gain for the other atom. The steady states of the system will be probed through spectroscopy and quantum state tomography as a function of the coupling between the two atoms.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
Integrating superfluids with superconducting qubit systems
将超流体与超导量子比特系统集成
DOI:
10.1103/physreva.101.012336
发表时间:
2020
期刊:
Physical Review A
影响因子:
2.9
作者:
[Lane, J. R., Tan, D., Beysengulov, N. R., Nasyedkin, K., Brook, E., Zhang, L., Stefanski, T., Byeon, H., Murch, K. W., Pollanen, J.]
通讯作者:
Pollanen, J.
DOI:
10.1038/s41567-019-0652-z
发表时间:
2019-12-01
期刊:
NATURE PHYSICS
影响因子:
19.6
作者:
[Naghiloo, M., Abbasi, M., Murch, K. W.]
通讯作者:
Murch, K. W.
QLCI-CG: Center for Quantum Sensors
-
批准号:1936526
-
项目类别:Standard Grant
-
资助金额:$14.66万
-
财政年份:2019
-
负责人:Kater Murch
-
依托单位:
CAREER: Heat, Work and Information in Quantum Circuits
-
批准号:1752844
-
项目类别:Continuing Grant
-
资助金额:$50.0万
-
财政年份:2018
-
负责人:Kater Murch
-
依托单位:
国内基金
海外基金
Cortical control of internal state in the insular cortex-claustrum region
-
批准号:--
-
项目类别:--
-
资助金额:25万元
-
批准年份:2020
-
负责人:Robert Konrad Naumann
-
依托单位: