课题基金 / 基金详情

SGER: Mapping the Genes for the Fear-Potentiated Startle Response

SGER: Mapping the Genes for the Fear-Potentiated Startle Response
SGER:绘制恐惧增强惊吓反应的基因图谱
批准号:
9811426
负责人:
James McCaughran
金额:
$4.85万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1998
资助国家:
美国
项目状态:
已结题
起止时间:
1998-08-01 至 1999-07-31

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中文摘要
翻译
这个实验研究项目研究电子在隧道耦合量子点中的行为。在一个恰当的类比中,这样的系统可以被视为人造分子,单个点被视为原子。这些系统中电子的基本特征;电子如何在点之间共享,共享电子态的能量,以及电子如何通过耦合的点电路;都是令人感兴趣的。具体测量包括:小隧道耦合点(每个点不超过100个电子)的库仑阻塞光谱;量子霍尔区隧道耦合点的库仑阻塞光谱;通过部分开放引线的单量子点的传输,预计将显示有趣的多体效应;以及开放电子波谐振器的传输。圆点样品是在哈佛大学用电子束光刻技术在分子束外延生长的GaAs/AlGaAs晶片上制作的。加州圣巴巴拉。这一研究项目本质上是跨学科的,涉及一名或多名研究生,他们接受了为在工业、政府实验室或学术界就业做准备的出色培训。这个实验研究项目研究了通过量子力学电子隧穿耦合的半导体量子点中电子的行为。在一个恰当的类比中,这样的系统可以被视为人造分子,单个点被视为原子。“量子点”是指在砷化镓/铝砷化镓晶片表面的一小块区域,类似于先进的微电子设备中所使用的区域。在整个晶片表面的正下方产生二维电子气,然后使用电子束光刻技术沉积微型电极,这种方法可以分离出一个包含多达100个电子的微小区域,称为量子点。这些系统中电子的基本特征;电子如何在点之间共享,共享电子态的能量,以及电子如何通过耦合的点电路,都是有趣的。具体测量包括:小隧道耦合点(每个点不超过100个电子)的库仑阻塞光谱;量子霍尔区隧道耦合点的库仑阻塞光谱;通过部分开放引线的单量子点的传输,预计将显示有趣的多体效应;以及开放电子波谐振器的传输。圆点样品是在哈佛大学用电子束光刻技术在分子束外延生长的GaAs/AlGaAs晶片上制作的。加州圣巴巴拉。这项研究与未来的电子学有关,在电子学中,设备将接近大分子的尺寸。在这种规模下,即使在室温下,量子力学也很重要。量子现象为计算提供了新的方法,从超高密度单电子存储器到预计会带来指数级速度增长的量子计算机。这里的研究解决了隧道耦合半导体纳米结构中量子力学电子态和电子传输的基本特征,作为迈向这些可能应用的第一步。这一研究项目本质上是跨学科的,涉及一名或多名研究生,他们接受了为在工业、政府实验室或学术界就业做准备的出色培训。***
英文摘要
w:\awards\awards96\*.doc 9802242 Westervelt This experimental research project investigates the behavior of electrons in tunnel-coupled quantum dots. In an apt analogy, such systems can be regarded as artificial molecules, the individual dots being considered as atoms. The fundamental characteristics of electrons in these systems; how electrons are shared between dots, the energy of shared electron states, and how electrons move through coupled dot circuits; are of interest. Specific measurements include Coulomb blockade spectroscopy of small tunnel-coupled dots (less than 100 electrons per dot); Coulomb blockade spectroscopy of tunnel-coupled dots in the quantum Hall regime; transport through single quantum dots with partially open leads, predicted to show interesting many body effects; and transport through open electron wave resonators. Dot samples are made at Harvard using electron beam lithography on GaAs/AlGaAs wafers grown via molecular beam epitaxy at Univ. California Santa Barbara. This research program is interdisciplinary in nature and involves one or more graduate students, who receive excellent training in preparation for careers in industry, government laboratories or academia. %%% This experimental research project investigates the behavior of electrons in semiconductor quantum dots coupled by quantum- mechanical electron tunneling. In an apt analogy, such systems can be regarded as artificial molecules, the individual dots being considered as atoms. The "quantum dot" is a small region in the surface of a GaAs/AlGaAs wafer, similar to those used in advanced microelectronic devices. A two-dimensional electron gas is produced just below the surface of the entire wafer, and then miniature electrodes are deposited using electron beam lithography which can isolate a tiny region containing as few as 100 electrons, called a qu antum dot. The fundamental characteristics of electrons in these systems; how electrons are shared between dots, the energy of shared electron states, and how electrons move through coupled dot circuits, are of interest. Specific measurements include Coulomb blockade spectroscopy of small tunnel-coupled dots (less than 100 electrons per dot); Coulomb blockade spectroscopy of tunnel-coupled dots in the quantum Hall regime; transport through single quantum dots with partially open leads, predicted to show interesting many body effects; and transport through open electron wave resonators. Dot samples are made at Harvard using electron beam lithography on GaAs/AlGaAs wafers grown via molecular beam epitaxy at Univ. California Santa Barbara. The research is relevant to future electronics in which devices will approach the size of large molecules. At this size scale quantum mechanics is important even at room temperature. Quantum phenomena offer new approaches to computation ranging from ultra dense single-electron memories to quantum computers projected to give an exponential increase in speed. The research here addresses the fundamental characteristics of quantum mechanical electron states and electron transport in tunnel-coupled semiconductor nanostructures as a first step toward these possible applications. This research program is interdisciplinary in nature and involves one or more graduate students, who receive excellent training in preparation for careers in industry, government laboratories or academia. ***
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