Introduction
Portable Spectrophotometer offers a wavelength pitch of 10 nm, providing precise color analysis by capturing spectral data at uniform intervals. It features a temperature control panel that maintains stable conditions and prevents variations. The device has a remote monitoring mode for controlling and tracking measurements from a distance. Our portable spectrophotometer has high data storage capacity, allowing for efficient measurement of large data.
This analytical equipment is designed to meet the rigorous requirements of modern laboratory operations, ensuring high precision, reliability, and ease of use for various experimental applications.Applications
Portable Spectrophotometer detects reflected or transmitted light from a sample to determine its color characteristics. It is widely used in plastic and polymer industry for color matching of raw materials and in monitoring quality control.
Specifications
| Optical Geometry | D/8, / Include UV/ exclude UV Light Source |
| Sphere Size | Φ40 mm |
| Sensor | Silicon Photodiode Array (Double Row 26 Groups) |
| Wavelength Range | 360 to 700nm |
| Wavelength Pitch | 10nm |
| Measured Reflectance Range | 0 to 200% |
| Color Spaces | , , Yxy, LCh, , S–, Hunter Lab, βxy, Lab 99, Munsell (C/2) |
| Color Difference Formula | ΔE × ab ΔE × uv, ΔE × 94, ΔE × cmc (2:1), ΔE ×cmc (1:1), ΔE × 00, ΔE99, ΔE(Hunter) |
| Other Indices | WI ( E313, /, , Hunter, TaubeBerger Stensby)), YI ( D1925, 313), MI |
| Illuminants | D 65, A, C, D50, D55, D75, F1, F2 (), F3, F4, F5, F6, F7 (), F8, F9, F10 (), F11(TL84) F12 (TL83/ U30), , ID50, ID65, , , , , , , , , , , , |
| Viewing Angle | 2°/10° |
| Measurement Time | 1.5 s |
| Repeatability | Chromaticity Value: /, within ΔE × ab 0.025 Spectral Reflectance: /, Standard Deviation within 0.08% (400nm to 700nm: within 0.18%) |
| Inter- Instrument Error | /, within ΔE × ab 0.15 |
| Displayed Accuracy | 0.01 |
| Measurement Mode | 2 to 99 times |
| Storage Capacity | 1000 Pcs Standard, 30000 Pcs Sample |
| Operating Temperature | 0 to 40°C, 0 to 85% RH, Altitude<2000m |
| Storage Temperature | -20 to 50°C, 0 to 85% RH |
| Power Consumption | 3.7 V, 5000mAh |
| Dimensions (L× W× H) | 129× 76 × 217mm |
| Weight | 600g |
Features
Spectral Reflectance Analysis
Auto Power Off
Graphical Output Display
Color Tolerance Setting
Advanced Filtering System
FAQs
1. Can portable spectrophotometers be used for qualitative analysis and material identification?
Yes, portable spectrophotometers are increasingly used for qualitative analysis and preliminary material identification, especially when full lab resources are unavailable. Full-spectrum scans can reveal unique absorption patterns or “spectral fingerprints” of unknown substances. By comparing spectra against internal or external reference libraries, users can tentatively identify materials such as food additives, dyes, or pollutants. In quality control or counterfeit detection, deviations from reference spectra can signal contamination or substitution. While not as definitive as chromatography or mass spectrometry, qualitative spectrophotometry is rapid, non-destructive, and highly valuable for field screening, product verification, and process control applications.
2. Can portable spectrophotometers be used in remote sensing or non-contact applications?
Yes, advanced portable spectrophotometers are equipped with accessories like fiber-optic probes, diffuse reflectance heads, or integrating spheres that enable non-contact or remote sensing. These configurations allow users to measure surfaces, powders, or liquids in situ without transferring samples to cuvettes. Applications include soil or leaf analysis in agriculture, raw material verification in manufacturing, and skin or tissue assessment in medical diagnostics. These tools expand the versatility of portable devices, especially in environments where direct sampling is impractical or undesirable. Calibration and contact pressure control are important to maintain consistency in such applications.
3. How do you ensure consistency across multiple portable spectrophotometers used in parallel?
It offers premium portable spectrophotometer. Consistency across multiple units is achieved through standardized calibration protocols, matched reference standards, and software synchronization. Instruments should be calibrated using the same certified materials and under similar environmental conditions. Method templates can be exported from a master device and loaded onto others to ensure identical measurement settings. Cloud-based platforms allow centralized monitoring, flagging discrepancies between devices in real time. Routine cross-validation between instruments helps detect drift or hardware variance. Some manufacturers offer device-matching services or internal validation routines to ensure performance equivalence across distributed units, critical for large-scale testing campaigns or decentralized quality assurance programs.
4. What is the importance of spectral resolution in a portable spectrophotometer, and how is it specified?
portable spectrophotometer have advanced features. Spectral resolution refers to the ability of the instrument to distinguish between closely spaced wavelengths and is typically defined as the full width at half maximum () of the spectral response. Higher resolution allows better separation of overlapping peaks, which is critical in complex mixtures or narrowband absorbance features. In portable spectrophotometers, resolution is generally lower than in benchtop models due to space and power constraints—common values range from 2 nm to 10 nm. Choosing the right resolution depends on the application: for broad peaks or colorimetric assays, low resolution may suffice; for detailed molecular analysis or multi-component mixtures, higher resolution is preferred.
5. How are optical filters used in portable spectrophotometers, and what is their purpose?
portable spectrophotometer have advanced features. Optical filters are used to selectively transmit or block specific wavelength bands, helping isolate regions of interest or reduce stray light. In filter-based spectrophotometers (as opposed to grating-based systems), filters act as a cost-effective way to target fixed wavelengths for common assays. Neutral density filters may also be used to attenuate light intensity, preventing detector saturation. Some portable devices include motorized filter wheels or interchangeable filter sets for different applications. Filters enhance performance by narrowing bandwidths, improving signal-to-noise ratios, and protecting sensors from excessive light exposure-crucial in high-sensitivity or multi-wavelength applications.
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