A novel method to study single-particle dynamics by the resistive pulse technique
- 1 August 1989
- journal article
- conference paper
- Published by AIP Publishing in Review of Scientific Instruments
- Vol. 60 (8) , 2756-2763
- https://doi.org/10.1063/1.1140654
Abstract
We have developed a new method, a pressure-reversal technique, which extends the uses of the resistive pulse (Coulter counter) technique to single-particle dynamics. The resistive pulse technique measures the increase in resistance when particles suspended in an electrolyte are transported through a current-carrying aperture. By the new method, the pressure is reversed when a particle exits the pore. A trigger signal, derived from the particle pulses, is used to activate two miniature solenoid valves which serve as pressure switches. In this way, the particle reenters the pore. A single particle flowing back and forth may be studied over a long period of time. The time the particle spends outside the pore between reversals is variable from a few milliseconds to several seconds. We have so far used pore diameters in the range of 3–30 μm. The new technique enables us to study single-particle dissolution and single-particle flow dynamics. The experimental arrangement and the details of the new method are described together with some illustrative measurements.Keywords
This publication has 14 references indexed in Scilit:
- Production and use of nuclear tracks: imprinting structure on solidsReviews of Modern Physics, 1983
- A new method to follow crystal growth by coulter counterJournal of Crystal Growth, 1979
- Electrokinetic measurements with submicron particles and pores by the resistive pulse techniqueJournal of Colloid and Interface Science, 1977
- Use of a Coulter Counter to Detect Discrete Changes in Cell Numbers and Volume During Growth of Escherichia coliJournal of Applied Bacteriology, 1975
- Observation of Aspherical Particle Rotation in Poiseuille Flow via the Resistance Pulse TechniqueBiophysical Journal, 1973
- Counting and Sizing of Submicron Particles by the Resistive Pulse TechniqueReview of Scientific Instruments, 1970
- Flow Around a Spheroid in a Circular TubePhysics of Fluids, 1964
- Chemical Etching of Charged-Particle Tracks in SolidsJournal of Applied Physics, 1962
- Electronic Counting and Sizing of BacteriaNature, 1958
- XCVII. The demagnetizing factors for ellipsoidsJournal of Computers in Education, 1945