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Optimize raw material identification and verification (RMID) with MIRA P

Applications | 2024 | MetrohmInstrumentation
RAMAN Spectroscopy
Industries
Materials Testing
Manufacturer
Metrohm

Summary

Importance of the Topic



Raw material identification and verification (RMID) is critical in industries that demand rapid and reliable confirmation of incoming goods, such as pharmaceuticals and chemicals. Portable Raman spectroscopy systems like the MIRA P enable non-destructive analyses and can accelerate quality control, reduce downtime, and ensure compliance with regulatory standards including FDA 21 CFR Part 11.

Objectives and Study Overview



This application note outlines a protocol for transferring an RMID model based on Principal Component Analysis (PCA) from one MIRA P instrument to another. It describes key steps in model transfer, validation procedures on the receiving device, and methods for enhancing model robustness when initial transfers do not meet acceptance criteria.

Methodology and Instrumentation



MIRA P instruments, configured with a 785 nm laser and Orbital-Raster-Scan technology, were used to build PCA-based verification models. A model constructed on the source unit is exported via MIRA Cal P software and imported into the target instrument. Validation sets containing positive samples of the target material and negative samples of dissimilar or related materials are analyzed to assess specificity and sensitivity. When necessary, the training set is expanded by adding spectra from the new instrument and parameter optimization is performed. Transfer matrices may be applied to correct for inter-instrument variance.

Key Results and Discussion



Case studies demonstrated the transfer process for three materials:
  • Sodium bicarbonate: Validation on the secondary instrument yielded appropriate p-value distributions for both positive and negative samples, indicating a successful transfer without further adjustment.
  • Lactose: Fluorescence effects at 785 nm required minor parameter tuning and inclusion of a few new spectra, after which the model exhibited robust performance.
  • Microcrystalline cellulose: High fluorescence challenged the initial transfer; application of a transfer matrix combined with parameter optimization produced consistent p-values and restored model reliability.


Benefits and Practical Applications



The ability to replicate RMID models across multiple instruments reduces development time, harmonizes QC workflows across sites, and facilitates fast release of raw materials. Centralized model creation with decentralized deployment enhances operational flexibility and productivity.

Future Trends and Potential Applications



Advances in calibration transfer algorithms and machine learning may further simplify inter-instrument consistency. Integration with cloud-based model management could enable real-time updates and global model distribution. Expanding libraries and automated transfer protocols will support wider adoption in pharmaceutical, chemical, and materials industries.

Conclusion



This work establishes a straightforward yet adaptable framework for transferring PCA-based RMID models between MIRA P analyzers. By following a structured protocol of validation and, if needed, model expansion or transfer matrix application, laboratories can maintain high confidence in material verification across instruments.

References


  1. Metrohm AG, Simplified RMID Model Building Mira Cal P and ModelExpert; Application Note AN-RS-031; Herisau, Switzerland, 2021.
  2. Gelwicks MJ, Real World Raman Simplifying Incoming Raw Material Inspection, Analyze This The Metrohm Blog.

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