366.102 Nanoelectromechanical Systems
This course is in all assigned curricula part of the STEOP.
This course is in at least 1 assigned curriculum part of the STEOP.

2022S, VU, 2.0h, 3.0EC
TUWEL

Properties

  • Semester hours: 2.0
  • Credits: 3.0
  • Type: VU Lecture and Exercise
  • Format: Presence

Learning outcomes

After successful completion of the course, students are able to 

  • Compare different fundamental continuum mechanical resonator types,
  • Conduct an eigenfrequency analysis of standard continuum nanomechanical resonators,
  • Understand and apply the dynamic mechanics of damped linear resonators,
  • Analyse the dynamic mechanical behavior of a continuum mechanical resonator in terms of a lumped-element model,
  • Explain the fundamental behavior of damped non-linear and coupled linear resonators,
  • Know different definitions of the quality factor,
  • Compare different loss mechanisms (medium, clamping, and intrinsic),
  • Explain damping dilution,
  • Predict the quality factor of a specific nanomechanical resonator,
  • Understand and discuss responsivity and sensitivity of a nanomechanical resonator,
  • Derive point mass responsivity, and compare strings to beams,
  • Derive distributed mass responsivity,
  • Compare static vs resonant force responsivity,
  • Discuss force gradient and softening effects,
  • Discuss temperature responsivity,
  • Discuss and compare various transduction schemes, such as electrodynamic, electrostatic, thermoelastic, piezoresistive, piezoelectric, and optic,
  • Discuss thermomechanical amplitude noise,
  • Explain electronic noise sources (shot noise, Johnson noise),
  • Derive frequency noise based on thermomechanical amplitude noise,
  • Discuss oscillator circuits such as PLL and closed-loop,
  • Discuss Allan deviation.

Subject of course

Nanoelectromechanical systems (NEMS) have been developed for a bit more than two decades now. NEMS are the continuation of Microelectromechanical Systems (MEMS), which have become omnipresent helpers in smart phones, cars, watches, etc. The two driving forces for NEMS research have been improved sensor technology and fundamental research.

This course introduces the latest models and skills required to design and optimise nano electromechanical resonators, taking a top-down approach that uses macroscopic formulas to model the devices. The course covers the electrical and mechanical aspects of NEMS devices. The introduced mechanical models are also key to the understanding and optimisation of nanomechanical resonators used e.g. in optomechanics.

The course is based on the yet unpublished 2nd edition of the following book:

S. Schmid, L. Villanueva, M. Roukes: 
"Fundamentals of Nanomechanical Resonators"; 
Springer International Publishing, Switzerland, 2016, ISBN: 978-3-319-28689-1;

A PDF of the book is available on TUWEL.

The course  content is:

  • 366.102-01: Damped linear resonators (book chapter 1)
  • 366.102-02: Coupled linear resonators, damped nonlinear resonators, parametric amplification (book chapter 1)
  • 366.102-03: Rayleigh-Ritz method, Euler-Bernoulli beam theory (book chapter 2)
  • 366.102-04: Effective parameters, geometric nonlinearities (book chapter 2)
  • 366.102-05: Medium interaction losses, clamping losses, friction (book chapter 3)
  • 366.102-06: Fundamental losses, dissipation dilution (book chapter 3)
  • 366.102-07: Electrodynamic & electrostatic transduction (book chapter 4)
  • 366.102-08: Piezoresistive, piezoelectric, thermoplastic, & optomechanic transduction (book chapter 4)
  • 366.102-09: Response to change of mass (book chapter 5)
  • 366.102-10: Response to change of effective spring constant (book chapter 4)
  • 366.102-11: Amplitude noise (book chapter 6)
  • 366.102-12: Frequency noise (book chapter 6)

Teaching methods

2h lecture including an exercise guided by a tutor. 

Time: Wednesdays 14:00 - 16:00

Room: CD0112

NEW THIS YEAR: The learned theory will be demonstrated on a real world experiment based on a macroscopic string resonator!

Mode of examination

Oral

Additional information

Sollte aufgrund von Vorgaben der Bundesregierung bzw. der TU Wien die Abhaltung der Lehrveranstaltung und der Prüfung bzw. der Teilleistungen in Präsenz nicht möglich sein, wird in das online-Format gewechselt. Durch den Wechsel in das online-Format können sich die für die Präsenzlehrveranstaltung und -prüfung (-teilleistungen) angekündigten Termine ändern. Bei einem Wechsel ins online-Format gelten folgende Methoden und Modi:

Methode bei Wechsel ins online-Format:
Die Vorlesung wird via Zoom abgehalten. Die Übungen können elektronisch eingereicht werden. 

Prüfungsmodus bei Wechsel ins online-Format:
Die Prüfung ist mündlich und findet via Zoom statt.

Beurteilungsschema bei der online-Prüfung:
Zwei Kapitel (eins vorbereited und eins zufällig gezogen) des begleitenden Buches werden mündlich geprüft. Die Beurteilung setzt sich aus der Leistung in den beiden Themenbereichen zusammen.

Erforderliches technisches Equipment für die Teilnahme an Lehrveranstaltung und Prüfung:
Gerät zur Teilnahme an Onlinemeetings inkl. Audio- und Videoübertragung.

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Attention: Lecture dates will be arranged as soon as possible.

 

Lecturers

Institute

Examination modalities

Hand in of at least 8 home assignments.

Course registration

Begin End Deregistration end
01.02.2022 08:00 04.03.2022 23:59 04.03.2022 23:59

Curricula

Study CodeObligationSemesterPrecon.Info
066 504 Master programme Embedded Systems Mandatory elective
066 508 Microelectronics and Photonics Mandatory elective
066 646 Computational Science and Engineering Not specified

Literature

S. Schmid, L. Villanueva, M. Roukes: 
"Fundamentals of Nanomechanical Resonators"; 
Springer International Publishing, Switzerland, 2016, ISBN: 978-3-319-28689-1;

Previous knowledge

Bachelor in any technical education.

Language

English