DocumentCode
874010
Title
Ultra-thin and isolated dots in polycrystalline lead zirconate titanate films
Author
Shin, Hyunjung ; Lee, Bongki ; Kim, Chanhyung ; Kim, Seung-Hyun
Author_Institution
Sch. of Adv. Mater. Eng., Kookmin Univ., Seoul
Volume
53
Issue
12
fYear
2006
fDate
12/1/2006 12:00:00 AM
Firstpage
2333
Lastpage
2339
Abstract
Size effects with critical thickness or minimum volume for ferroelectricity are of importance in the application of polycrystalline PZT thin films as future memory devices and as storage media. Isolated dots of perovskite phases in the matrix of pyrochlore were synthesized by isothermal annealing through transformation from amorphous to perovskite. Control of the transformation kinetics allows us to produce the isolated ferroelectric dots with a diameter of 50 nm. Domain structure of the isolated dots is also studied by piezoresponse force microscopy. As prepared, all isolated dots contain perpendicularly polarized monodomains. Domain structures and switching behaviors of the isolated dots are similar to those of the single crystalline PZT films. Polycrystalline PZT films with a thickness of 50 nm were also investigated. They show excellent piezoresponse properties and switching behaviors. Ultra-thin polycrystalline PZT films can play a major role in the application of future ferroelectric memories and field-effect transistors as well as for storage media using the local probe technique
Keywords
annealing; atomic force microscopy; electric domains; ferroelectric switching; piezoelectricity; polymorphic transformations; thin films; PbZnO3NbO3; domain structure; domain switching; ferroelectric memory; ferroelectricity; field-effect transistors; isolated ferroelectric dots; isothermal annealing; local probe technique; monodomains; perovskite phases; piezoresponse force microscopy; polycrystalline lead zirconate titanate films; pyrochlore matrix; storage media; transformation kinetics; Amorphous materials; Annealing; Ferroelectric films; Ferroelectric materials; Isothermal processes; Kinetic theory; Microscopy; Polarization; Thin film devices; Titanium compounds;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2006.181
Filename
4037269
Link To Document