Scientists model heat's memory in disordered materials
Heat retains a "memory" due to delayed energy dissipation in disordered materials, as explained by a new mathematical model. This could improve heat-resistant materials and thermoelectric devices.
Scientists have discovered that heat has a form of memory, challenging the long-held assumption that it simply flows from hot to cold in a predictable way.
The finding emerges from a new theoretical framework that treats heat as a complex system with lingering effects, much like how a stretched rubber band retains tension. Researchers have long observed anomalies in heat transfer at microscopic scales, but this work, published in *Nature Communications*, provides a mathematical model to explain why some materialsโlike glass or polymersโdonโt cool uniformly. The team, led by physicists at the University of Maryland, found that heatโs "memory" arises from how energy dissipates through disordered structures, where vibrations and molecular interactions create a lag effect.
This could transform fields from materials science to computing. For example, engineering heat-resistant materials for spacecraft or more efficient thermoelectric devices might now account for this delayed response. The model also hints at why some systems, like biological tissues or quantum materials, defy classical thermodynamics. Early peer reviews call the work a "breakthrough" in understanding non-equilibrium heat behavior, though experiments are needed to confirm its real-world applications.
Next, the team plans to test the framework on advanced materials, like those used in next-gen batteries. If validated, it could redefine how we harnessโor combatโheat in technology, with implications for energy storage, electronics cooling, and even climate modeling.
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