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Thermo Scientific Dionex UltiMate 3000 Fluorescence Detectors

Brochures and specifications | 2011 | Thermo Fisher ScientificInstrumentation
HPLC
Industries
Manufacturer
Thermo Fisher Scientific

Summary

Significance of the topic


Fluorescence detection is a cornerstone technique in analytical chemistry for its exceptional sensitivity and selectivity, enabling trace‐level quantitation in complex matrices.
The integration of advanced optics and high‐speed data acquisition supports ultrafast separations in modern UHPLC workflows.
Reliable fluorescence detection underpins quality control, environmental monitoring, and life-science research where low detection limits and rapid throughput are essential.

Objectives and overview


This document presents the Thermo Scientific Dionex UltiMate 3000 FLD-3000 series fluorescence detectors, designed for both standard HPLC and high‐pressure UHPLC applications.
Two configurations are available: a Rapid Separation (RS) version supporting data rates up to 200 Hz, and a Standard (SD) mode up to 100 Hz.
The overview highlights novel features such as variable emission filters, dual‐PMT options, temperature‐controlled flow cells, and seamless integration with Chromeleon 7.1 chromatography data system.

Instrumentation used


  • Thermo Scientific Dionex UltiMate 3000 FLD-3000 SD and RS fluorescence detector series
  • Xenon flash lamp with selectable pulse frequencies (LongLife, Standard, HighPower)
  • Variable emission filter and fast‐switching excitation/emission monochromators
  • Optional dual‐photomultiplier tube (PMT) configuration extending detection to 900 nm
  • Thermostatted micro (2 µL) and analytical (8 µL) flow cells
  • Chromeleon 7.1 chromatography data system with Method Transfer Wizard and AutoQ qualification module


Main results and discussion


The optimized optical path and stray‐light suppression deliver Raman S/N ratios > 550 (ASTM) across the lamp lifetime and > 2100 using dark‐signal reference.
Fast‐turning monochromators and filters enable wavelength switching in < 250 ms, supporting multichannel monitoring of up to four excitation/emission pairs under UHPLC conditions.
Sub-1.2 min separation of polycyclic aromatic hydrocarbons (PAHs) and baseline resolution of 17 PAHs in under 5 min demonstrate both high sensitivity and chromatographic efficiency.
Temperature‐controlled flow cells maintain fluorescence stability with RSD < 0.01% over ambient shifts of > 7 °C.
Smart lamp‐frequency cycling doubles lamp lifespan (> 15,000 h) while preserving low‐noise baselines during critical peak elution.

Benefits and practical applications


Unmatched sensitivity enables trace analysis in environmental, pharmaceutical, and food safety laboratories.
High‐throughput screening and multicomponent assays benefit from rapid data rates and automated wavelength changes.
Robust qualification tools and real-time instrument wellness monitoring ensure regulatory compliance and minimal downtime.

Future trends and potential applications


Emerging needs in metabolomics and proteomics will drive demand for wider spectral coverage, further leveraging dual-PMT configurations.
Integration with two-dimensional separations and mass spectrometry will extend analytical capabilities for complex sample profiling.
Machine-learning-driven method optimization, cloud-based data analytics, and greener UHPLC protocols will shape next-generation fluorescence detection workflows.

Conclusion


The Dionex UltiMate 3000 FLD-3000 series sets a new benchmark for fluorescence detection, combining sensitivity, speed, and flexibility for both routine and cutting-edge applications.
Advanced optics, intelligent software integration, and rugged design deliver reproducible, high-throughput results while minimizing maintenance and operational costs.

Reference


None provided in source document.

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