Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures

In this thesis, I present the work performed towards a proposal to couple a piezoelectric, nanomechanical beam to a radio frequency single electron transistor (RF-SET). Lumped element RF circuit theory is applied to 50 kOhm single electron transistors acting as the resistor in an RLC circuit. It is...

Full description

Bibliographic Details
Main Author: Rideout, Joshua
Other Authors: Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.))
Language:en
en
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1974/5445
id ndltd-LACETR-oai-collectionscanada.gc.ca-OKQ.1974-5445
record_format oai_dc
spelling ndltd-LACETR-oai-collectionscanada.gc.ca-OKQ.1974-54452013-12-20T03:39:30ZProgress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale StructuresRideout, JoshuaPhysicsLow temperatureQuantum Hall effectQuantum limitIn this thesis, I present the work performed towards a proposal to couple a piezoelectric, nanomechanical beam to a radio frequency single electron transistor (RF-SET). Lumped element RF circuit theory is applied to 50 kOhm single electron transistors acting as the resistor in an RLC circuit. It is shown that for the expected inductances and stray capacitances, at an operating frequency of 1.25 GHz, the RF-SET is expected to have a usable half-bandwidth of 175-200 MHz and a charge sensitivity on the order of 10^(−5) e/√Hz. A fabricated RF-SET device is cryogenically cooled and used to find experimental values of the stray capacitance. A heterostructure made of gallium arsenide and aluminum gallium arsenide from which piezoelectric beams can be made is designed to contain a 2-dimensional electron gas (2DEG). Quantum Hall effect samples are fabricated from the wafer, and magnetoresistance measurements for each sample are presented. It is shown that the 2DEG has a high electron concentration of about 8 × 10^11 cm−2 but a low mobility of about 3.5 × 10^4 cm^2/(V·s) for this type of heterostructure.Thesis (Master, Physics, Engineering Physics and Astronomy) -- Queen's University, 2010-03-01 22:55:56.427Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.))2010-03-01 22:55:56.4272010-03-02T16:11:30Z2010-03-02T16:11:30Z2010-03-02T16:11:30ZThesishttp://hdl.handle.net/1974/5445enenCanadian thesesThis publication is made available by the authority of the copyright owner solely for the purpose of private study and research and may not be copied or reproduced except as permitted by the copyright laws without written authority from the copyright owner.
collection NDLTD
language en
en
sources NDLTD
topic Physics
Low temperature
Quantum Hall effect
Quantum limit
spellingShingle Physics
Low temperature
Quantum Hall effect
Quantum limit
Rideout, Joshua
Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
description In this thesis, I present the work performed towards a proposal to couple a piezoelectric, nanomechanical beam to a radio frequency single electron transistor (RF-SET). Lumped element RF circuit theory is applied to 50 kOhm single electron transistors acting as the resistor in an RLC circuit. It is shown that for the expected inductances and stray capacitances, at an operating frequency of 1.25 GHz, the RF-SET is expected to have a usable half-bandwidth of 175-200 MHz and a charge sensitivity on the order of 10^(−5) e/√Hz. A fabricated RF-SET device is cryogenically cooled and used to find experimental values of the stray capacitance. A heterostructure made of gallium arsenide and aluminum gallium arsenide from which piezoelectric beams can be made is designed to contain a 2-dimensional electron gas (2DEG). Quantum Hall effect samples are fabricated from the wafer, and magnetoresistance measurements for each sample are presented. It is shown that the 2DEG has a high electron concentration of about 8 × 10^11 cm−2 but a low mobility of about 3.5 × 10^4 cm^2/(V·s) for this type of heterostructure. === Thesis (Master, Physics, Engineering Physics and Astronomy) -- Queen's University, 2010-03-01 22:55:56.427
author2 Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.))
author_facet Queen's University (Kingston, Ont.). Theses (Queen's University (Kingston, Ont.))
Rideout, Joshua
author Rideout, Joshua
author_sort Rideout, Joshua
title Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
title_short Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
title_full Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
title_fullStr Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
title_full_unstemmed Progress Towards the Quantum Limit: High and Low Frequency Measurements of Nanoscale Structures
title_sort progress towards the quantum limit: high and low frequency measurements of nanoscale structures
publishDate 2010
url http://hdl.handle.net/1974/5445
work_keys_str_mv AT rideoutjoshua progresstowardsthequantumlimithighandlowfrequencymeasurementsofnanoscalestructures
_version_ 1716621123341254656