Stopped Flow Sans

Stopped-flow SANS (small-angle neutron scattering) is a time-resolved technique for tracking nanoscale structural changes after two or more components mix, making it valuable for studying fast evolving materials. In operation, reactants are rapidly combined and delivered through a flow cell; the flow is stopped at a selected delay, and a neutron beam records scattering patterns that reveal changes in size, shape, organization, and interactions. In engineering research, stopped-flow SANS helps characterize polymer assembly, colloidal transformations, protein aggregation, and other nonequilibrium processes, linking molecular-scale structure to material performance and supporting the design of advanced soft and functional materials.

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Research

JoVE Journal - Environment

Protocol for Measuring the Thermal Properties of a Supercooled Synthetic Sand-water-gas-methane Hydrate Sample

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2016

We present a protocol for measuring the thermal properties of synthetic hydrate-bearing sediment samples comprising sand, water, methane, and methane hydrate.

Measuring Material Microstructure Under Flow Using 1-2 Plane Flow-Small Angle Neutron Scattering

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Cited by 27 •

2014

A shear cell is developed for small-angle neutron scattering measurements in the velocity-velocity gradient plane of shear and is used to characterize complex fluids. Spatially resolved measurements in the velocity gradient direction are possible for studying shear-banding materials. Applications include investigations of colloidal dispersions, polymer solutions, and self-assembled structures.

Sand Fly (Phlebotomus papatasi) Embryo Microinjection for CRISPR/Cas9 Mutagenesis

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Cited by 4 •

2020

This protocol details the steps of CRISPR/Cas9 targeted mutagenesis in sand flies: embryo collection, injection, insect rearing, and identification as well as selection of mutations of interest.

Flow Cytometry Purification of Mouse Meiotic Cells

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Cited by 65 •

2011

An efficient method to obtain highly purified viable meiotic fractions from mouse testis is described, which combines a refined cell dissociation protocol with fluorescent activated cell sorting (FACS). This method takes advantage of differences in the DNA content and nuclear density of discrete meiotic fractions.

Automation of the Micronucleus Assay Using Imaging Flow Cytometry and Artificial Intelligence

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Cited by 5 •

2023

The micronucleus (MN) assay is a well-established test for quantifying DNA damage. However, scoring the assay using conventional techniques such as manual microscopy or feature-based image analysis is laborious and challenging. This paper describes the methodology to develop an artificial intelligence model to score the MN assay using imaging flow cytometry data.

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