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Isothermal Titration Calorimetry (ITC) for Binding Characterization in Pharmaceutical Research

Pharmaceutical research and discovery rely on accurate characterization of molecular interactions to develop effective and safe drugs. Isothermal Titration Calorimetry (ITC) is a gold-standard technique that provides critical insights into binding affinity, thermodynamics, and stoichiometry—essential components in Structure-Activity Relationship (SAR) studies.

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Linear Viscoelastic Region: Why It’s Crucial in Materials Testing

Our world is brimming with viscoelastic materials: The dough you knead before baking a fresh loaf, the Silly Putty your toddler slaps against the wall, the rubber gaskets that create an airtight seal on an airplane door. Testing those materials by applying controlled deformations (strains) or forces (stresses) at various timescales, temperatures, and/or humidities allows for the optimization of properties and ensures durability and safety.

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Lithium-ion Battery Quality and Performance Testing with Isothermal Microcalorimetry

Over the past decade, battery research, development, and quality control have adopted in-situ and in-operando isothermal microcalorimetry (IMC) as the leading method to evaluate heat flow during lithium-ion battery cycling. While cycling a cell to failure can take many months, emerging diagnostic tests are able to predict long-term behavior in a matter of weeks.

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Mastering Paints, Inks and Coatings Performance: How Rheology Supports Quality Control

In the world of paints, inks and coatings, a single formulation error can make the difference between a flawless finish and a costly mistake. Rheology is the unsung hero that transforms coatings from a simple mixture into a precisely engineered material that meets the most demanding performance requirements.

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Material Analysis for Bioplastics Quality Assurance and Degradation

What are bioplastics? How can plastic manufacturers use them to improve the environmental impact of their products? With so many emerging green technologies, producers and consumers need to differentiate between greenwashing1 and genuine advancements. Furthermore, if a new development is deemed environmentally beneficial, all stages of the plastics supply chain, especially converters, must then learn how to incorporate the new technology without undermining their process or products.

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Material Analysis Techniques for Every Stage of Polymer Development

Polymers are everywhere, from components making up the electronic device you’re reading this on to life-saving medical devices, energy efficient solar panels, and lightweight aero or auto components. Material scientists and engineers continue to improve high-performance polymers for strength, durability, and stability under demanding applications.

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Microcalorimetry for the Biophysical Characterization of Macromolecules

Biological macromolecules are fundamental components of every cell and are therefore essential for all life. These vital molecules are categorized into four major classes: carbohydrates, lipids, proteins, and nucleic acids. Characterizing biological macromolecules is important for understanding their functions and relationships, which empowers the development of new therapies and treatments. Under this branch of macromolecule research, biotherapeutic drug therapy focuses on macromolecular interactions which can lead to disease and/or cell death.

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Optimization of Catalytic Reactions by High-Pressure TGA

Catalytic reactions are everywhere: from plastics and bread to over 90% of all chemicals worldwide, countless goods and materials are manufactured with the aid of catalysts.1 Catalysts are substances that speed up sluggish chemical reactions. Faster reactions are more technologically and economically competitive. Furthermore, optimized catalysts offer a huge potential to reduce energy and resource consumption and lower carbon dioxide emissions.

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Optimizing Thermal Interface Materials (TIMs) for Electronics: How TA Instruments Supports Advanced Thermal Management

As electronic devices grow more powerful and compact, thermal management has become a critical design challenge. Central to this challenge are Thermal Interface Materials (TIMs)—specialized materials engineered to enhance heat transfer between high-power electronic components and heat-dissipating surfaces.

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Overcoming Composites R&D Challenges with Material Analysis

The composites market is evolving fast. Global market projections indicate a 10.8 % growth by 2028, driven by the demand for composites across industries looking for materials with superior performance at reduced weight and cost. This blog explores how advanced material analysis can enhance R&D and manufacturing processes in the composites market, ultimately leading to financial savings and increased efficiency.

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