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Hypersmart Matter

Material that can both store and process information for low-energy computing

Researchers at AMOLF and the University of Konstanz have developed a mechanical material that can store, move, and process information within the same physical structure. The findings, published in Physical Review Letters, could help inspire future computing technologies that use far less energy than conventional computers. Life at AMOLF 2020 Cost item (per person) Public user (€) Private user (€) Tariff per day 680 1,480 Tariff per hour 85 185

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Mechanical-material-that-can-store-move-and-process-information
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Researchers at AMOLF and the University of Konstanz have developed a mechanical material that can store, move, and process information within the same physical structure. The findings, published in Physical Review Letters, could help inspire future computing technologies that use far less energy than conventional computers.

Read news item
Mechanical-material-that-can-store-move-and-process-information
Hypersmart Matter

Material that can both store and process information for low-energy computing

Researchers at AMOLF and the University of Konstanz have developed a mechanical material that can store, move, and process information within the same physical structure. The findings, published in Physical Review Letters, could help inspire future computing technologies that use far less energy than conventional computers.

Read news item
Mechanical-material-that-can-store-move-and-process-information
Hypersmart Matter

Material that can both store and process information for low-energy computing

Researchers at AMOLF and the University of Konstanz have developed a mechanical material that can store, move, and process information within the same physical structure. The findings, published in Physical Review Letters, could help inspire future computing technologies that use far less energy than conventional computers.

Read news item
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