Dynamic Control of Nanoprecipitation in a Nanopipette
Author(s) -
Boaz Vilozny,
Paolo Actis,
R Seger,
Nader Pourmand
Publication year - 2011
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/nn200320b
Subject(s) - nanoreactor , biomineralization , precipitation , salt (chemistry) , crystallization , nanoparticle , materials science , nanoscopic scale , kinetics , nanotechnology , ion , chemical physics , chemical engineering , chemistry , physics , organic chemistry , quantum mechanics , meteorology , engineering
Studying the earliest stages of precipitation at the nanoscale is technically challenging but quite valuable as such phenomena reflect important processes such as crystallization and biomineralization. Using a quartz nanopipette as a nanoreactor, we induced precipitation of an insoluble salt to generate oscillating current blockades. The reversible process can be used to measure both kinetics of precipitation and relative size of the resulting nanoparticles. Counter ions for the highly water-insoluble salt zinc phosphate were separated by the pore of a nanopipette and a potential applied to cause ion migration to the interface. By analyzing the kinetics of pore blockage, two distinct mechanisms were identified: a slower process due to precipitation from solution, and a faster process attributed to voltage-driven migration of a trapped precipitate. We discuss the potential of these techniques in studying precipitation dynamics, trapping particles within a nanoreactor, and electrical sensors based on nanoprecipitation.
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