Detection of APIs in Pharmaceutical formulations using ARL X’TRA Companion X-ray Diffractometer
Applications | 2025 | Thermo Fisher ScientificInstrumentation
X-ray diffraction (XRD) plays a pivotal role in pharmaceutical analysis by revealing crystalline structures and polymorphs of active pharmaceutical ingredients (APIs) and excipients. Accurate phase identification and purity assessment underpin product safety, efficacy and regulatory compliance.
This study demonstrates the detection and quantification of resveratrol in hydroxypropyl methylcellulose (HPMC) matrices using the Thermo Scientific ARL X'TRA Companion X-ray Diffractometer. Key goals include establishing the limit of detection (LoD) and evaluating method robustness for routine quality control applications.
Distinct resveratrol diffraction peaks were identified down to 1 wt.% against HPMC background. Linear regression analysis yielded an LoD of approximately 0.2 wt.% (3× standard error). The instrument’s fast data acquisition and automated Rietveld fitting enabled reliable phase quantification and detection of low-level APIs and polymorphic forms.
The ARL X'TRA Companion XRD offers rapid, high-throughput API identification and quantification within complex formulations, supporting stringent QA/QC workflows. One-click Rietveld analysis and LIMS integration streamline data reporting and compliance with regulatory standards, enhancing formulation development and batch release processes.
Emerging directions include integration with machine learning for automated phase recognition, in situ monitoring of crystallization and dissolution, and expanded use in characterizing amorphous materials and polymorph screening. Advances in detector technology and software will further improve sensitivity and workflow automation.
This application note highlights the capability of the ARL X'TRA Companion XRD to detect APIs at sub-percent levels in pharmaceutical formulations, delivering fast, accurate and automated analyses essential for modern pharmaceutical quality control.
X-ray
IndustriesPharma & Biopharma
ManufacturerThermo Fisher Scientific
Summary
Importance of the topic
X-ray diffraction (XRD) plays a pivotal role in pharmaceutical analysis by revealing crystalline structures and polymorphs of active pharmaceutical ingredients (APIs) and excipients. Accurate phase identification and purity assessment underpin product safety, efficacy and regulatory compliance.
Objectives and Study Overview
This study demonstrates the detection and quantification of resveratrol in hydroxypropyl methylcellulose (HPMC) matrices using the Thermo Scientific ARL X'TRA Companion X-ray Diffractometer. Key goals include establishing the limit of detection (LoD) and evaluating method robustness for routine quality control applications.
Methodology and Instrumentation
- Instrument: ARL X'TRA Companion X-ray Diffractometer in Bragg-Brentano geometry with a θ/θ goniometer, 600 W Cu source, radial and axial collimation and integrated solid-state pixel detector.
- Software: Profex for data processing and Rietveld quantification; crystallography open database (COD) for theoretical peak matching.
- Samples: Pure HPMC and mixtures containing 1 wt.% and 5 wt.% resveratrol, measured in reflection mode with Cu Kα radiation, zero-background holder, 30 min acquisition and sample spinning.
Main Results and Discussion
Distinct resveratrol diffraction peaks were identified down to 1 wt.% against HPMC background. Linear regression analysis yielded an LoD of approximately 0.2 wt.% (3× standard error). The instrument’s fast data acquisition and automated Rietveld fitting enabled reliable phase quantification and detection of low-level APIs and polymorphic forms.
Practical Benefits and Applications
The ARL X'TRA Companion XRD offers rapid, high-throughput API identification and quantification within complex formulations, supporting stringent QA/QC workflows. One-click Rietveld analysis and LIMS integration streamline data reporting and compliance with regulatory standards, enhancing formulation development and batch release processes.
Future Trends and Potential Applications
Emerging directions include integration with machine learning for automated phase recognition, in situ monitoring of crystallization and dissolution, and expanded use in characterizing amorphous materials and polymorph screening. Advances in detector technology and software will further improve sensitivity and workflow automation.
Conclusion
This application note highlights the capability of the ARL X'TRA Companion XRD to detect APIs at sub-percent levels in pharmaceutical formulations, delivering fast, accurate and automated analyses essential for modern pharmaceutical quality control.
Reference
- N. Döbelin, R. Kleeberg, J. Appl. Crystallogr. 2015, 48, 1573-1580.
- F. Caruso et al., J. Agric. Food Chem. 2004, 52, 7279-7285.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
Analysis of metakaolin for cost-effective decarbonized cement using ARL X’TRA Companion X-ray Diffractometer
2024|Thermo Fisher Scientific|Applications
Application note | AN41510 Lab equipment Analysis of metakaolin for cost-effective decarbonized cement using ARL X’TRA Companion X-ray Diffractometer Author Dr. Simon Welzmiller, Application Specialist XRD Introduction Instrument & software Metakaolin, a highly reactive pozzolanic material derived from The Thermo…
Key words
amorphous, amorphousx’tra, x’traillite, illitemicrocline, microclinemullite, mulliteclay, claycompanion, companionbiotite, biotitekaolinite, kaolinitexrd, xrdarl, arlmetakaolin, metakaolinclinochlore, clinochlorequartz, quartzray
Analyzing SiC/Co materials for radar absorption and EMI shielding using ARL X’TRA Companion XRD
2025|Thermo Fisher Scientific|Applications
Application note | AN41524 Analyzing SiC/Co materials for radar absorption and EMI shielding using ARL X’TRA Companion XRD Author: Dr. Simon Welzmiller, Application Specialists XRD Introduction SiC–Co composites represent a new class of engineered section and stable electromagnetic shielding are…
Key words
sic, sicx’tra, x’tracompanion, companionxrd, xrdarl, arlemi, emicomposites, compositesradar, radardielectric, dielectricamorphous, amorphousshielding, shieldingelectromagnetic, electromagneticcobalt, cobaltcomposite, compositepronto
Analysis of silica in air filters using ARL X’TRA Companion X-ray Diffractometer
2025|Thermo Fisher Scientific|Applications
Application note | 41521 X-ray diffraction Analysis of silica in air filters using ARL X’TRA Companion X-ray Diffractometer Authors Introduction Dr. Simon Welzmiller, The analysis of silica in air filters is a critical aspect of occupational health and safety, Application…
Key words
xrd, xrdx’tra, x’tracompanion, companionarl, arlray, raysilica, silicainhaling, inhalingclick, clickfilters, filterscollimation, collimationdivergence, divergencerietveld, rietvelddiffractometer, diffractometerworkers, workersair
Determination of the degree of crystallinity in PE using ARL X’TRA Companion X-ray Diffractometer
2024|Thermo Fisher Scientific|Applications
Application note Determination of the degree of crystallinity in PE using ARL X’TRA Companion X-ray Diffractometer Introduction The degree of crystallinity (DoC) in polymers is determined by analyzing their molecular structure and arrangement. This measurement is crucial as it provides…
Key words
companion, companionx’tra, x’tradiffractometer, diffractometercrystallinity, crystallinitycrystallite, crystallitearl, arldoc, docxrd, xrdcrystalline, crystallinedegree, degreeray, raypolymers, polymersdetermine, determinerietveld, rietveldgoniometer