News from LabRulezICPMS Library - Week 28, 2026

LabRulez / AI: News from LabRulezICPMS Library - Week 28, 2026
Our Library never stops expanding. What are the most recent contributions to LabRulezICPMS Library in the week of 6th July 2026? Check out new documents from the field of spectroscopy/spectrometry and related techniques!
👉 SEARCH THE LARGEST REPOSITORY OF DOCUMENTS ABOUT SPECTROSCOPY/SPECTROMETRY RELATED TECHNIQUES
👉 Need info about different analytical techniques? Peek into LabRulezLCMS or LabRulezGCMS libraries.
This week we bring you brochure by Agilent Technologies, application note by Shimadzu and other document by Thermo Fisher Scientific!
1. Agilent Technologies: The Easiest Smart Decision You Can Make - The Agilent 9500 ICP-MS
- Brochure
- Full PDF for download
The brochure presents the Agilent 9500 ICP-MS as an ICP-QQQ system designed to bring triple quadrupole performance into routine laboratories without adding unnecessary complexity. It addresses common ICP-MS challenges such as spectral interferences, complex matrices, method development, re-runs, and the limitations of single quadrupole ICP-MS. The 9500 is positioned as a system that delivers reliable, interference-free trace element data while simplifying operation, method setup, and troubleshooting.
A central feature of the system is Agilent’s proprietary Dual-Cell System (DCS), which combines Advanced Helium Mode (AHM) and Air mode. AHM replaces multiple traditional tune modes with one streamlined mode, helping reduce acquisition time by more than 33% while improving sensitivity, especially for low-mass elements. Air mode uses ambient air for oxygen mass-shift reactions, enabling effective removal of difficult on-mass interferences without the need for additional oxygen cylinders or related safety infrastructure.
The brochure also highlights the system’s practical design improvements. These include Easy-fit sample introduction, automatic gas connections and torch alignment, improved access to the spray chamber, torch, cones, and peristaltic pump, reduced power consumption, lower exhaust flow, enhanced corrosion resistance, and a smaller footprint compared with previous ICP-QQQ systems. The 9500 also supports demanding applications such as high-salinity seawater analysis, rare earth element interference removal, and sub-ppt impurity analysis in high-purity titanium.
Software and automation are presented as key parts of the workflow. OpenLab ICP-MS provides method development tools such as Method Advisor, preset methods, batch conversion from existing single quadrupole ICP-MS methods, guided diagnostics, reporting, and IntelliQuant screening. The 9500 can also be integrated with Agilent autosamplers, the AVS MS switching valve, and ADS 2 autodilutor to automate calibration, dilution, analysis, and reporting. Overall, the brochure positions the Agilent 9500 ICP-MS as a more accessible, productive, and future-ready ICP-QQQ platform for laboratories needing reliable results across complex sample types.
2. Shimadzu: Continuous Automatic Measurement of Static Spring Constant and Dynamic Properties before and after Durability Tests on Rubber Vibration Isolators by Combination Test Software
- Application note
- Full PDF for download
A rubber vibration isolator is a product designed to prevent or mitigate the transmission of vibration and shock. It is widely used in various fields such as transportation equipment, construction, and industrial machinery.
JIS K 6385 “Rubber vibration isolators - Test methods” defines several test methods and terms for evaluating the performance of rubber vibration isolators. In order to estimate the fatigue life of rubber vibration isolators, a durability test method is specified in which the rubber vibration isolator is subjected to repeated loads to evaluate the presence of failure, cracks, or changesin properties. It is extremely important to evaluate the durability of rubber vibration isolators because deterioration in their performance can cause noise and instability.
Shimadzu’s fatigue and endurance testing machine Servopulser’s Windows Software for 4830 has a function called a combination test, which automatically combines several tests and continuously executesthem. This article introduces an example of continuous automatic measurement of static spring properties and dynamic properties of rubber vibration isolators before and after durability tests, by using a combination test.
Testing Equipment
The EMT-1kNV-50 electromagnetic fatigue and endurance testing machine was used in these tests. Fig. 2 shows a photograph of the testing machine. The electromagnetic actuator with extremely high frequency response enables highly accurate dynamic testing. In these tests, the maximum test frequency was 100 Hz. The EMT series is most suitable for testing at such high frequencies.
Conclusion
A fatigue and endurance testing machine was used to compare the static spring properties and dynamic properties of rubber vibration isolators before and after durability testing based on JIS K 6385. Combination testing software enables continuous and automatic execution of each test, thus reducing work time. The highly responsive EMT series also enables high-frequency testing with amplitudes of 0.05 mm and 100 Hz.
3. Thermo Fisher Scientific: Enhancing Monoclonal Antibody Yield and Quality Through Automated Multi-Component Feedback Control Loops Using the MarqMetrix All-In-One Process Raman Analyzer
- Other document
- Full PDF for download
Understanding the structural changes of polymers during the extrusion process is essential for optimizing the manufacturing of extruded products. Extrusion can alter a polymer’s structure and properties in ways that can enhance its performance and functionality. Changes such as the transition from crystalline to amorphous phases or shifts in vibrational modes can be leveraged to tailor the end-polymer’s mechanical, thermal, and optical properties to meet specific application needs.
Polymer extrusion is a high-volume manufacturing process where raw plastic materials, such as low-density polyethylene (LDPE) and polylactic acid (PLA), are melted and pushed through a shaped die to create specific and continuous profiles. In twin-screw extruders, this is accomplished using two intermeshing screws and a heating system to increase temperature, shear forces and pressure, in order to efficiently melt and homogenize the polymers. This process allows for the production of a wide range of plastic products with consistent shapes and properties.
In addition to polymeric applications, twin-screw extruders are commonly used in pharmaceutical applications for mixing active pharmaceutical ingredients (APIs) with excipients. In battery manufacturing, extruders are used to thoroughly mix anode and cathode materials needed for homogeneous end products. The Thermo Scientific™ Process™ 11 Parallel Twin-Screw Extruder is an ideal tool for processing and compounding various materials in this manner.
Vibrational spectroscopic techniques such as Raman spectroscopy are often utilized for off-line evaluation of extrusion products. However, if such techniques can be integrated in line with the extruders, it can facilitate real-time measurements of many qualitative and quantitative aspects of the process.
Raman spectroscopy is a technique used to observe vibrational, rotational, and other low-frequency modes in a material. Raman spectroscopy works by shining a monochromatic light source, typically a laser, onto a sample. The light interacts with the molecular vibrations within the sample, causing the light to scatter. Most of the scattered light has the same wavelength as the incident light (Rayleigh scattering), however, a small portion of the scattered light has different wavelengths due to interactions with molecular vibrations. This change in wavelength provides a unique spectral fingerprint of the material, which can be used to identify and characterize the sample’s molecular composition and structure. This data can be translated into quantitative or qualitative information with the use of chemometric modeling techniques such as partial least squares (PLS) regression or principal component analysis (PCA).
The Thermo Scientific™ MarqMetrix™ All-In-One Process Raman Analyzer allows users to implement Raman spectroscopy directly in line with an extrusion process by using strong and chemically resistant optical probes. MarqMetrix probes can be integrated in line with extruder barrels allowing the continual monitoring of the extrusion process to make quantitative and qualitative decisions in real time.
This white paper highlights the integration of the MarqMetrix All-In-One Process Raman Analyzer with the Process 11 Parallel Twin-Screw Extruder to observe polymer processing in real time, directly within the barrel of the extruder. Raman spectroscopy was first used to characterize the differences between the virgin material prior to extrusion, and the same material during extrusion. It was then utilized to indicate when materials had been mixed and then to track the transition from one polymer to another within the extruder system using qualitative chemometric models.
The materials used in this study were LDPE and PLA. These materials were chosen due to their popularity in end-products across multiple industries as well as their well-characterized Raman spectra.
Conclusion
The integration of the MarqMetrix All-In-One Process Raman Analyzer with the Process 11 Parallel Twin-Screw Extruder has demonstrated significant benefits for real-time, inline process monitoring in polymer extrusion. This study highlighted the capability of Raman spectroscopy to effectively differentiate between solid and molten states of polymers and provided clear identification of transitions from one polymer to another using PCA models. Such information can be utilized to ensure no cross-contamination during polymer change overs and to ensure the quality of the extruded polymers. This proofof-concept study can be further applied to quantify the composition of the composite polymer materials using PLS models. Additionally, the MarqMetrix All-In-One analyzer can also be integrated mid-barrel to understand the reactive extrusion in real time.
Overall, the implementation of Raman spectroscopy into polymer extrusion processes offers a multitude of benefits, ranging from real-time monitoring and quality control to process optimization and cost savings. These advantages make Raman spectroscopy an invaluable tool for enhancing the efficiency and effectiveness of polymer extrusion operations




