Contador Coulter Multisizer 4e
El contador Coulter Multisizer 4e es un sistema de recuento y caracterización de partículas muy versátil.
Utiliza el principio Coulter para detectar partículas mediante detección de zona eléctrica, independientemente de la naturaleza o las propiedades ópticas de la partícula. Esto lo convierte en una herramienta ideal para detectar y realizar recuentos de una amplia variedad de partículas, como:
- Células de mamíferos
- Bacterias
- Levaduras
- Abrasivos
- Partículas de tóner
- Agregados celulares
- Esferoides
- Agregados de proteínas grandes
Documentación y notas de aplicación
Características
Versatilidad
- Tamaños de apertura de 10 µm a 2000 µm de diámetro para las necesidades actuales y futuras
- Múltiples opciones de apertura y capacidad de superposición de datos para analizar muestras complejas a lo largo de una amplia distribución del tamaño de partículas
Detección de muestras
- Analice materiales en disolventes acuosos o no acuosos
- Ideal para muestras biológicas o no biológicas
- Detección de partículas independientemente del tipo de material o de las propiedades ópticas
Recuento rápido de partículas
- Tasas de muestreo típicas de hasta 10 000 recuentos por segundo
- Detección y recuento de partículas de 0,2 µm-1600 µm de diámetro
- Volúmenes de muestra de tan solo 5 ml
Gestión de datos
- Los datos de pulsos digitales pueden almacenarse y volver a analizarse según sea necesario
- Software que cumple con la norma CFR 21 Parte 11 para seguridad y control de auditoría
- Gran variedad de esferas de calibración y controles de validación V-check
Explore Multisizer 4e Models
Documentos técnicos
Multisizer 4e Particle Analyzer
What is the Coulter principle for particle analysis?
The Coulter principle is a widely used method for particle size and count analysis based on electrical resistance. It works by suspending particles in a conductive liquid and passing them one by one through a small aperture with an electrical current applied.
When a particle passes through the aperture, it displaces its own volume of electrolyte, causing a momentary change in electrical impedance. This change is directly proportional to the particle’s volume, allowing precise measurement of particle size and concentration.
The Coulter principle is commonly used in particle characterization, cell counting (e.g., blood cells), pharmaceuticals, biotechnology, and industrial quality control because it provides accurate, reproducible, and number-based particle measurements.
What's a good way to measure particle size distribution?
A reliable way to measure particle size distribution is Electrical Sensing Zone (ESZ) analysis, also known as the Coulter principle. This method measures particles individually as they pass through a small aperture, delivering high-resolution, number-based particle size distributions across a wide size range.
Instruments like the Multisizer 4e Particle Analyzer apply this technique to provide accurate, reproducible particle sizing and counting for applications in pharmaceuticals, biotechnology, industrial materials, and research. The Multisizer 4e Particle Analyzer is especially effective when precise control, traceability, and true particle-by-particle measurement are required—making it a gold standard for particle characterization.
What is the difference between a Coulter counter and flow cytometry for cell counting?
A Coulter counter counts and sizes cells using the Coulter principle (Electrical Sensing Zone) by measuring changes in electrical impedance as each cell passes through a small aperture. This provides accurate, label-free total cell counts and true cell volume measurements, independent of cell color, shape, or optical properties.
Flow cytometry, by contrast, counts cells using light scatter and fluorescence as cells pass through a laser. It enables multiparametric biological analysis (e.g., surface markers, viability, phenotype) but typically requires fluorescent labeling and is more sensitive to optical and staining variability.
How to count particles regardless of their shape or color?
The most effective way to count particles regardless of shape, color, or optical properties is by using Electrical Sensing Zone (ESZ) technology, also known as the Coulter principle. This method counts particles individually by measuring changes in electrical impedance as each particle passes through a small aperture filled with a conductive liquid.
Because the signal is based on particle volume, not light scattering or imaging, ESZ analysis delivers accurate, label-free particle counting that is independent of particle shape, transparency, refractive index, or color. This makes it ideal for heterogeneous samples in biotechnology, pharmaceuticals, industrial materials, and quality control.
Instruments such as the Multisizer 4e Particle Analyzer apply this technology to provide precise, reproducible particle counts and size distributions across a wide size range.