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Raman at the speed you need - Thermo Scientific DXR3 Raman Family

Brochures and specifications | 2020 | Thermo Fisher ScientificInstrumentation
RAMAN Spectroscopy, Microscopy
Industries
Materials Testing
Manufacturer
Thermo Fisher Scientific

Summary

Significance of the topic


Raman spectroscopy provides label-free, non-destructive chemical analysis with high specificity and spatial resolution. Fast, reliable Raman imaging and bulk analysis are critical for applications ranging from materials science to pharmaceuticals and environmental monitoring.

Aims and overview


This document details the Thermo Scientific DXR3 Raman instrument family, comprising three platforms: a research-grade Raman Microscope, an advanced Raman Imaging Microscope (DXR3xi), and a SmartRaman Spectrometer. The overview highlights their design objectives: high throughput, ease of use, and consistent data quality.

Methodology and instrumentation


The DXR3 instruments share a modular, pre-aligned architecture that supports user-exchangeable lasers (455 nm to 785 nm), filters, and gratings locked by SmartLock technology. A triplet spectrograph with four selectable apertures (25 and 50 µm pinholes and slits) enables confocal analysis without moving parts. Motorized stages offer submicrometer precision in X, Y and software-controlled Z focus. Optional fiber-optic probes extend sampling flexibility.

Main results and discussion


  • Spatial resolution: better than 1 µm (Microscope) and 0.5 µm (Imaging Microscope) with confocal depth of 2 µm.
  • Spectral resolution: full-range gratings achieve <5 cm⁻¹ FWHM; high-resolution modes deliver 2 cm⁻¹.
  • Imaging speed: up to 600 spectra per second and single 100 µm × 100 µm images in 35 seconds.
  • Throughput: rapid autofocus, polarization analysis, and automated alignment reduce setup time.
  • Bulk analysis: SmartRaman Spectrometer accommodates solids, liquids, and powders with Variable Dynamic Point Sampling.

Performance data demonstrate consistent alignment, calibration, and laser power regulation via OMNIC software, ensuring reproducible results across instruments.

Benefits and practical applications of the method


  • High-speed chemical imaging for tablet uniformity, material heterogeneity, and quality control.
  • Flexible sampling for fibers, films, gels, and powders in research and industrial settings.
  • Automated workflows simplify analysis for non-specialists, reducing errors and operator training.
  • Modular design minimizes downtime through tool-free component replacement.

Future trends and opportunities


Anticipated developments include integration with machine learning for automated spectral interpretation, expansion into 3D confocal imaging, and enhanced compatibility with remote and in situ monitoring. Miniaturized Raman probes and real-time process analytical technology (PAT) are emerging trends.

Conclusion


The DXR3 Raman Family delivers a comprehensive suite of Raman instruments that balance resolution, speed, and usability. Its modular platform architecture and advanced software ecosystem provide reliable, reproducible results for diverse analytical challenges.

References


No external literature references were provided in the source document.

Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.

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