Signals of Quantum Behaviour in Nanomechanical Systems: Non-linear Effects
Signals of Quantum Behaviour in Nanomechanical Systems: Non-linear Effects
批准号:
EP/D066417/1
负责人:
Denzil Rodrigues
金额:
$27.79万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2006
资助国家:
英国
项目状态:
已结题
起止时间:
2006 至 --
中文摘要
纳米机电系统,或NEMS,是一种新兴技术,其中微小的机器(如振动梁)被构建在硅芯片上,就像电子产品被安装在计算机芯片上一样。除了具有与计算机芯片相同的优点,如可靠性,小尺寸和低成本,在芯片上安装机械设备而不仅仅是电子设备,这导致了广泛的全新应用,从光学开关到汽车安全气囊传感器,再到灵敏度足以测量单个DNA分子质量的称重秤。然而,除了提供许多新技术外,NEMS还可以解决一个困扰物理学家世纪的问题-量子到经典的转变。NEMS有时被描述为介观或中等尺寸,因为它们与日常世界相比很小,但仍然比原子大得多。从世纪开始,我们就知道原子遵循的规则与足球等日常物体非常不同,这些规则被称为量子力学。既然一切都是由原子组成的,那么我们就有了一个问题:为什么一个原子服从量子力学,而一个由许多原子组成的足球却服从经典力学的日常规则。NEMS器件是一种中等大小的器件,处于量子和经典世界的边界,是帮助我们理解量子到经典跃迁的理想器件。以前关于NEMS的绝大多数工作都使用了对器件的最基本描述,即它们是弱耦合(即线性)到测量器件的谐振子。这种方法有两个主要问题。第一个是没有振荡器是真正的谐波,也没有耦合是真正的线性,这些近似总是会有修正。随着NEMS器件越来越小,这些校正变得越来越重要,这意味着简单的线性描述不够好。第二个问题是,如果振子是谐振子,耦合是线性的,那么量子态和经典态之间几乎没有明显的区别。特别是,对于一个实验者来说,要检测这样的振荡器是否具有量子力学行为是非常困难的。这个项目将超越众所周知的谐波、弱耦合近似,包括耦合和谐振器恢复力中的非线性效应。通过进入这一尚未被充分理解的领域,该项目不仅将提供对NEMS的描述,这对较小的设备更准确和有效,而且将允许研究经典和量子制度之间的差异。该项目将通过研究被称为量子非破坏、量子Duffing共振和量子混沌的效应,来寻找设备以量子力学方式起作用的明确信号。这样的信号对于实验学家来说至关重要,因为他们能够自信地说他们已经观察到了设备中的量子行为。此外,通过研究这些效应如何随着谐振器尺寸和测量强度的增加而变化,该项目将描述原子和电子的量子世界如何让位于我们日常的足球世界。
英文摘要
Nanoelectromechanical systems, or NEMS, are an emerging technology where tiny machines (such as vibrating beams) are built onto silicon chips in the same way as electronics are miniaturised on computer chips. As well as having the same advantages as computer chips, such as reliability, small size and low cost, having mechanical devices on a chip instead of just electronics leads to a wide range of completely novel applications, ranging from optical switches, to car airbag sensors, to weighing scales sensitive enough to measure the mass of a single DNA molecule. However, as well as offering many new technologies, NEMS can also cast light on a question that has puzzled physicists for a century / the quantum to classical transition.NEMS are sometimes described as mesoscopic, or middle-sized, as they are tiny compared to the everyday world, but still much larger than atoms. Since the start of the 20th Century, we have known that atoms obey very different rules to everyday objects like footballs, rules that are known as quantum mechanics. As everything is made of atoms, we are left with the question of why a single atom obeys quantum mechanics, but a football made of many atoms obeys the everyday rules of classical mechanics. NEMS devices, being middle-sized, are on the border between the quantum and classical worlds and so are the ideal devices to help us understand the quantum to classical transition.The vast majority of previous work on NEMS has used the most basic descriptions of the devices / namely that they are harmonic oscillators weakly (i.e. linearly) coupled to measuring devices. There are two major problems with this approach. The first is that no oscillator is truly harmonic and no coupling is truly linear, and there will always be corrections to these approximations. As NEMS devices are made smaller and smaller, these corrections become more and more significant, meaning that the simple, linear, description is not good enough. The second problem is that if the oscillator is harmonic and the coupling is linear, there are few obvious differences between the quantum and classical regimes. In particular, it is very difficult for an experimentalist to detect if such an oscillator is behaving quantum mechanically or not.This project will move beyond the well known harmonic, weakly coupled approximation, to include non-linear effects in the coupling and the resonator restoring force. By moving into this as-yet poorly understood area, this project will not only provide a description of NEMS that is more accurate and valid for smaller devices, but will allow the investigation of the differences between the classical and quantum regime. The project will search for clear signals that a device is acting quantum mechanically, by studying effects known as quantum non-demolition, quantum Duffing resonances, and quantum chaos. Such signals will be crucial for experimentalists to be able to state with confidence that they have observed quantum behaviour in a device. In addition, by investigating how these effects change with increasing resonator size and measurement strength, this project will describe how the quantum world of atoms and electrons gives way to our everyday world of footballs.
期刊论文(4)
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科研奖励(0)
会议论文
国内基金
海外基金
Research on Quantum Field Theory without a Lagrangian Description
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批准号:24ZR1403900
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项目类别:省市级项目
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资助金额:--
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批准年份:2024
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负责人:SATOSHI NAWATA
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依托单位:
Simulation and certification of the ground state of many-body systems on quantum simulators
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批准号:--
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项目类别:--
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资助金额:40万元
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批准年份:2020
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负责人:Abolfazl Bayat
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依托单位:
Mapping Quantum Chromodynamics by Nuclear Collisions at High and Moderate Energies
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批准号:11875153
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2018
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负责人:MARCO RUGGIERI
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依托单位: