Small Animal In Vivo Imaging System
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$200
Code: RWD200
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Academic pricing and trade in options may be available. Request a quote to receive the best price for your lab.
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Delivery timelines will be provided with your quote
Standard lead time varies by product availability (in-stock items usually 1–3 business days, custom/backordered items 7–21 business days).
90-day return policy
Eligible items may be returned within 90 days after delivery, subject to our Return Policy.
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Final delivery schedules and pricing are subject to confirmation in your official quotation. Customs policies may also impact the total cost. Contact us for your best quote.
overview
Features & Benefits
Ultra-High Sensitivity
Up to -90°C CCD cooling and ≥90% quantum efficiency enable exceptional low-light performance for bioluminescence and fluorescence imaging
Broad Spectral Compatibility
Excitation wavelengths from 400 to 900 nm support diverse fluorophores used in oncology, immunology, and stem cell research
Reliable Multimodal Imaging
Integrates bioluminescence, fluorescence, X-ray, and Cherenkov imaging in one system for versatile, in vivo experimental workflows.
Quantitative Accuracy
Calibration, spectral unmixing, and flat-field correction ensure reliable quantification across imaging sessions.
Scalable Field of View
Imaging range from 2.5 × 2.5 cm to 25 × 25 cm covers both localized and whole-body applications.
Data Consistency
Bias, background, and cosmic ray corrections enhance image uniformity and reproducibility.
Advantages
Highlights
High-precision Imaging
The -90℃ version features significantly lower dark current and readout noise, ensuring sharper and more detailed images.
Stability and Reliability
Lower dark current improves stability, crucial for long-term experiments.
Future-Proof
The -90℃ version provides long-term value for increasingly precise imaging demands.
Superior Low-Light Performance
Ideal for detecting weak light signals in fluorescence and molecular imaging.
Applications
Cancer
Drug Development
Immunity & Stem Cells
Developmental Biology
Neuroscience
Genetics & Molecular Biology
Specifications
| Module | Parameters | MOIS HTP | MOIS HT | MOIS HTX |
| Imaging Modules | Fluorescence Imaging Module | √ | √ | √ |
| Bioluminescence Imaging Module | √ | √ | √ | |
| Spectral High-Resolution Imaging | √ | √ | √ | |
| X-Ray Module | × | × | √ | |
| Upconversion Fluorescence Imaging (UCFI) Module | Expandable & Upgradeable | |||
| Detector | Camera Type | Back-illuminated sensor, Scientific-grade CCD | ||
| Operating Temperature | -70°C | -90°C | -90°C | |
| Pixel Count | 1024×1024 | |||
| Aperture (F-Stop) | ≤ 0.95 | |||
| Minimum FOV (Field of View) | 2.5cm × 2.5cm (optional) | |||
| Maximum FOV | 25cm × 25cm | |||
| Quantum Efficiency | ≥90% (500–700nm) | |||
| Broadband Light Source | 150W Halogen-tungsten broadband | |||
| Laser System | Guide Laser | Real-time FOV center display for positioning | ||
| Filters Excitation Filters / Emission Filters |
19 / 7 | |||
| Software | Real-time Acquisition System | Supports real-time image acquisition with light prompts, time series module, communication connection, and bioluminescence/fluorescence multi-mode imaging switching. Synchronous acquisition module supported. | ||
| Offline Analysis Workstation | Support image analysis, time spectrum analysis module, need to be authorized by molecular software quantitative module | |||
| Environmental Control | Multi-Animal Imaging Chamber | 5 channels | ||
| Temperature Module | Temperature control range: 20-40°C, accuracy: ±0.1°C | |||
| Anesthesia System | Anesthesia gas control: isoflurane, concentration: 0.5%–5% adjustable | |||
Comparison of Small Animal In Vivo Imaging Systems: -70°C vs -90°C
| Model | Parameter | MOIS HTP | MOIS HT |
| -70°C Version | Dark Current | 0.0004 (typical) – 0.001 (max) | 0.000177 (typical) |
| Readout Noise | @100KHz: 3.0 e⁻ (typical), 5 e⁻ (max) @2MHz: 9 e⁻ (typical), 15 e⁻ (max) |
@50KHz: 2.9 e⁻ (typical) @1MHz: 6.6 e⁻ (typical) |
|
| Signal-to-Noise Ratio (SNR) | Slightly lower SNR, may affect high-precision imaging | Higher SNR, suitable for ultra-low noise high-resolution imaging | |
| Image Quality | Good for standard imaging, less effective for low light signals | Excellent low light capture, ideal for high-resolution and low noise imaging | |
| Application Scenarios | General small animal imaging experiments | High-precision imaging, low signal detection, long-term monitoring | |
| Stability | Higher dark current and noise may affect result consistency | Lower dark current and noise enhance image stability and reliability | |
| Research Suitability | Basic research and drug development | Preclinical research, oncology, drug tracking, and dynamic monitoring |
Additional Recommendations:
- High-precision Imaging: The -90°C version features significantly lower dark current and readout noise, ensuring sharper and more detailed images.
- Stability and Reliability: Lower dark current improves stability, crucial for long-term experiments.
- Future-Proof: The -90°C version provides long-term value for increasingly precise imaging demands.
- Superior Low-Light Performance: Ideal for detecting weak light signals in fluorescence and molecular imaging.