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Ordered nanoparticle arrays formed on engineered chaperonin protein templatesTraditional methods for fabricating nanoscale arrays are usually based on lithographic techniques. Alternative new approaches rely on the use of nanoscale templates made of synthetic or biological materials. Some proteins, for example, have been used to form ordered two-dimensional arrays. Here, we fabricated nanoscale ordered arrays of metal and semiconductor quantum dots by binding preformed nanoparticles onto crystalline protein templates made from genetically engineered hollow double-ring structures called chaperonins. Using structural information as a guide, a thermostable recombinant chaperonin subunit was modified to assemble into chaperonins with either 3 nm or 9 nm apical pores surrounded by chemically reactive thiols. These engineered chaperonins were crystallized into two-dimensional templates up to 20 microm in diameter. The periodic solvent-exposed thiols within these crystalline templates were used to size-selectively bind and organize either gold (1.4, 5 or 10nm) or CdSe-ZnS semiconductor (4.5 nm) quantum dots into arrays. The order within the arrays was defined by the lattice of the underlying protein crystal. By combining the self-assembling properties of chaperonins with mutations guided by structural modelling, we demonstrate that quantum dots can be manipulated using modified chaperonins and organized into arrays for use in next-generation electronic and photonic devices.
Document ID
20040087807
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
McMillan, R. Andrew
(NASA Ames Research Center Moffett Field CA United States)
Paavola, Chad D.
Howard, Jeanie
Chan, Suzanne L.
Zaluzec, Nestor J.
Trent, Jonathan D.
Date Acquired
August 21, 2013
Publication Date
December 1, 2002
Publication Information
Publication: Nature materials
Volume: 1
Issue: 4
ISSN: 1476-1122
Subject Category
Life Sciences (General)
Distribution Limits
Public
Copyright
Other

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