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When to Measure Glass Transition Temperature (Tg) on DSC, TMA, or DMA

The glass transition temperature (Tg) is a fundamental material property for defining material integrity, manufacturing conditions, and operating guidelines across applications such as polymers, electronics, and advanced materials.

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What does COP 26 mean for the batteries industry?

In autumn of 2021, the 26th UN Climate Change Conference of the Parties (COP 26) met in Glasgow to work out agreements to curb greenhouse gas emissions and prevent additional climate change. COP 26 built upon the Paris Agreement to limit global warming below 2-degrees Celsius by achieving net zero carbon dioxide (CO2) emissions. These two agreements will shape how governments and industries work together to reduce climate change over the next decade.

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The Road to U.S. Electric Vehicle Battery Production

Consumer interest and sustainability goals are driving soaring demand for electric vehicles. The U.S. aims for electric vehicle sales to reach 50% of the total market by 2030, yet 99% of the raw and component materials for EV batteries are produced externally.1, 2 Sourcing foreign-made materials and batteries has already created challenges in the industry. Russia’s invasion of Ukraine led to market instability that caused the price of nickel, a key battery material, to skyrocket in March 2022.

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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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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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How Researchers are Engineering Flexible and Wearable Electronics with Thermal Analysis

From foldable smartphones to wearable health monitors, the electronics industry is demanding materials that are not only conductive but also flexible, durable, and thermally stable. Designers and manufacturers are challenged to optimize processing and ensure finished products can withstand operating conditions without failure – and doing so requires multiple types of thermal analysis.

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