2 mm Two Ends Open Flow Cells
The 2 mm Two Ends Open Flow Cells from Aireka Scientific are designed for precise and reliable measurements in various scientific and laboratory applications. These flow cells offer exceptional performance and durability, making them an ideal choice for researchers and scientists. Let’s explore the features and specifications of this product in detail:
Option: 2mm-Flow-Cell
- Volume: Not applicable (flow-through design)
- Pathlength: 2 mm
- Size: H x W x D: 16 x 12.5 x 4.5 mm
- Wavelength Range: 200 – 2,500 nm
- Material: Quartz
- Fabrication Type: Fused
- Number of Windows: 2 polished windows
Product Highlights:
- Precise Pathlength: The 2 mm pathlength of these flow cells ensures accurate and reproducible measurements, allowing for precise analysis of samples.
- Chemical Resistance: Made from high-quality fused quartz, these flow cells are highly resistant to most chemicals, ensuring long-lasting performance and reliability.
- Wide Spectral Range: With a spectral range of 200 – 2,500 nm, these flow cells are suitable for a broad range of applications, enabling measurements across various wavelengths.
- Optimal Size: The compact design of the flow cells, with dimensions of 16 x 12.5 x 4.5 mm, ensures easy handling and compatibility with standard laboratory equipment.
- Versatile Use: The open ends of the flow cells allow for convenient and flexible sample introduction and handling, making them suitable for a variety of experimental setups.
- Quality Construction: Crafted with meticulous attention to detail, these flow cells are designed to meet the rigorous demands of scientific research, ensuring reliable and accurate results.
What’s the use of bottomless cuvettes?
Bottomless cuvettes, also known as two ends open cuvettes, serve a specific purpose in scientific and laboratory applications. Here are some uses and benefits of bottomless cuvettes:
- Flexible Sample Introduction: Bottomless cuvettes allow for easy and convenient sample introduction and handling. Their open design at both ends enables researchers to directly pipette or transfer samples without the need for additional steps, such as filling or emptying through a capped end.
- Continuous Flow Measurements: Bottomless cuvettes are commonly used in continuous flow systems, where samples are continuously introduced and measured in real-time. The open ends facilitate smooth and uninterrupted sample flow through the cuvette, making them suitable for applications such as flow cytometry, cell counting, and monitoring reaction kinetics.
- Dynamic Measurements: Due to their open-ended design, bottomless cuvettes are ideal for studying dynamic processes that involve rapid sample exchange or mixing. They enable researchers to easily introduce reagents, initiate reactions, or monitor changes in real-time without the need for cuvette removal or disruption.
- Easy Cleaning and Maintenance: Bottomless cuvettes are easy to clean and maintain. With no closed ends or caps, they can be thoroughly rinsed and dried between experiments, minimizing the risk of cross-contamination and ensuring accurate and reproducible measurements.
- Versatility: Bottomless cuvettes are compatible with various analytical techniques, including spectrophotometry, fluorescence spectroscopy, and absorbance measurements. Their versatility makes them suitable for a wide range of applications, such as DNA/RNA quantification, protein analysis, enzymatic assays, and more.
- Increased Sensitivity: The absence of a bottom window in these cuvettes eliminates potential interference or reflections from the cuvette base, leading to improved sensitivity and accuracy in measurements.
- Customizable Specifications: Bottomless cuvettes can be customized to meet specific research requirements, including path length, material, and window size. This flexibility allows researchers to optimize the cuvettes for their experimental setup and desired sample volume.
By offering convenient sample handling, continuous flow capabilities, and versatility in dynamic measurements, bottomless cuvettes provide researchers with a valuable tool for various scientific applications. Their open-ended design simplifies experimentation, enhances sensitivity, and enables real-time monitoring, ultimately contributing to the advancement of scientific knowledge and discoveries.
Upgrade your scientific experiments with the precision and reliability of the 2 mm Two Ends Open Flow Cells from Aireka Scientific. Explore the endless possibilities and unlock new insights in your research with these high-quality flow cells. Order now and experience the difference in your scientific endeavors.
What’s the use of flow cells?
Flow cells have a wide range of applications in scientific and laboratory settings due to their unique design and functionality. Here are some key uses of flow cells:
- Spectrophotometry: Flow cells are commonly employed in spectrophotometry, where they enable the measurement of absorbance or transmittance of light through a sample. By passing the sample through the flow cell, researchers can obtain valuable information about the composition, concentration, and properties of the sample.
- Chemical Analysis: Flow cells are instrumental in various chemical analysis techniques, such as liquid chromatography and flow injection analysis. These techniques involve the continuous flow of a sample through the flow cell, allowing for real-time monitoring and detection of analytes.
- Biological Research: Flow cells find extensive use in biological research, particularly in applications such as cell counting, cell culture monitoring, and enzyme kinetics. The controlled flow of biological samples through the flow cell enables researchers to study cellular processes, perform viability assessments, and analyze enzymatic reactions.
- Flow Cytometry: Flow cells are integral components of flow cytometers, powerful instruments used for cell analysis and sorting. In flow cytometry, cells suspended in a fluid are passed through the flow cell one at a time, allowing for the characterization and sorting of cells based on their physical and biochemical properties.
- Microfluidics: Flow cells play a crucial role in microfluidic systems, which manipulate small volumes of fluids for various applications. Microfluidic flow cells enable precise control of fluid flow, mixing, and reactions, making them valuable tools in fields such as drug discovery, genomics, and diagnostics.
- Environmental Monitoring: Flow cells are utilized in environmental monitoring systems to analyze water quality, detect pollutants, and assess the health of ecosystems. By continuously flowing water samples through flow cells, researchers can monitor parameters such as dissolved oxygen, nutrient levels, and pollutant concentrations.
The use of flow cells offers several advantages, including:
- Real-time Monitoring: Flow cells facilitate continuous and real-time monitoring of samples, enabling researchers to capture dynamic changes and obtain immediate results.
- Sample Conservation: Flow cells require only small sample volumes, making them suitable for applications where sample conservation is crucial, such as precious or limited sample scenarios.
- Repeatability and Precision: Flow cells provide consistent and repeatable measurements, ensuring reliable and accurate data acquisition.
- Flexibility and Customization: Flow cells come in various sizes, pathlengths, and designs, allowing for customization to suit specific experimental requirements.
In summary, flow cells are versatile tools that enable the controlled flow of samples, facilitating a wide range of scientific analyses, measurements, and experiments. Their applications span across disciplines such as chemistry, biology, biotechnology, environmental science, and more, making them indispensable in research and laboratory settings.
0 | 1 | 2 | 3 | ||
---|---|---|---|---|---|
*Molded | *Fused | *Bonded / Glued | |||
UV vis ( 190- 2500 nm) | Yes | Yes | Yes | ||
Transmission Matched | Yes | Yes | Yes | ||
Transmission > 80% | Yes | Yes | Yes | ||
Resistant to Acids and Bases (except hydrofluoric acid) | Yes | Yes | No | ||
Resistant to Organic Solvents | Yes | Yes | No | ||
Usable upto 500°C (932°F) | Yes | Yes | No | ||
Usable upto 1200°C (2192°F) | Yes | No | No | ||
0 Variations Reading | On Request | No | No | ||
Fabrication | Molded | Assembled with Quartz Powder | Assembled with Glue | ||
Adhesives | No | No | Yes | ||
Storage | Short Term Storage | Clean After Use | Clean After Use | ||
Available Material | ES Quartz Material | ||||
Note | Molded and fused cuvettes and cells are assembled by direct fusion without the use of adhesives throughout the production process. This guarantees resistance against corrosive chemicals and high temperature. Each quartz cuvette and cell has excellent transmission from 190nm to 2500nm. |
To the best of our knowledge, the information provided here is accurate. However, Aireka Scientific assumes no liability for the accuracy of this page. The values provided are typical at the time of manufacture and may vary over time and from batch to batch. All products are for laboratory and research and development use only, and may not be used for any other purpose including health care, pharmaceuticals, cosmetics, food, or commercial applications.
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