My Account Log in

1 option

Computational modeling of nanocrystal superlattices / Mehdi Bakhshi Zanjani.

LIBRA TJ001 2014 .B168
Loading location information...

Available from offsite location This item is stored in our repository but can be checked out.

Log in to request item
Format:
Book
Manuscript
Thesis/Dissertation
Author/Creator:
Bakhshi Zanjani, Mehdi, author.
Contributor:
Lukes, Jennifer R., degree supervisor.
Bassani, J. L. (John L.), degree committee member.
Murray, Christopher B., degree committee member.
University of Pennsylvania. Department of Mechanical Engineering and Applied Mechanics.
Language:
English
Subjects (All):
Penn dissertations--Mechanical engineering.
Mechanical engineering--Penn dissertations.
Local Subjects:
Penn dissertations--Mechanical engineering.
Mechanical engineering--Penn dissertations.
Physical Description:
vii, 126 leaves ; 29 cm
Production:
[Philadelphia, Pennsylvania] : [University of Pennsylvania], 2014.
Summary:
Nanocrystal superlattices (NCSLs) are materials formed by assembly of monodisperse nanocrystal building blocks that are tunable in composition, size, shape, and surface functionalization. Such materials offer the potential to realize unprecedented combinations of physical properties, however, theoretical prediction of such properties remains a challenge. Because of the different length scales involved in these structures, modeling techniques at different scales, from ab-initio methods up to continuum models, can be used to study their behavior. This presents a challenge of understanding when and for which properties we can use computationally inexpensive continuum or mesoscopic models and when we will have to use microscopic models. Our goal here is to develop models that can predict phononic and thermal properties of different NCSLs. This includes (1) predicting bulk mechanical properties of NCSLs such as Young's and bulk modulus which are related to the behavior of low frequency acoustic phonons (2) predicting phononic band gaps through finding phonon dispersion curves of NCSL (3) predicting thermal conductivity of NCSLs. We also study the topic of one-way phononic devices that can possibly be implemented with acoustic metamaterials such as NCSLs or phononic crystals in general. This idea of one-way phonon isolation is investigated in a theoretical framework by considering systems such as acoustic waveguides and low dimensional materials.
Notes:
Ph. D. University of Pennsylvania 2014.
Department: Mechanical Engineering and Applied Mechanics.
Supervisor: Jennifer R. Lukes.
Includes bibliographical references.
OCLC:
907969216

The Penn Libraries is committed to describing library materials using current, accurate, and responsible language. If you discover outdated or inaccurate language, please fill out this feedback form to report it and suggest alternative language.

Find

Home Release notes

My Account

Shelf Request an item Bookmarks Fines and fees Settings

Guides

Using the Find catalog Using Articles+ Using your account