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Purdue University


Tech makes it possible to digitally communicate through human touch

Researchers at Purdue University have developed a technology that enables digital communication through direct touch, allowing for secure payments and information transfer without biometric authentication. This innovation uses an "Electro-Quasistatic range" to confine signals within the body, preventing hacking and interception.

SourcePurdue University·JournalACM Transactions on Computer-Human Interaction·DateDec 3, 2020

Oddly satisfying metamaterials store energy in their skin

Purdue University scientists have created a patterned sheet of domes that can store energy in its skin, enabling strong mechanical tasks and programmable data processing. The technology has potential applications in flexible robotics and mechanical computing, where energy storage and efficient processing are crucial.

SourcePurdue University·JournalAdvanced Science·DateDec 2, 2020

Machine learning innovation to develop chemical library

Researchers at Purdue University have developed a machine learning model that can predict reaction outcomes and test new reactions in a blind prospective manner. The model uses statistical robust machine learning models trained on a small number of reactions to provide interpretable chemical reactivity flowcharts.

SourcePurdue University·JournalOrganic Letters·DateNov 18, 2020

Targeted therapies developed to reduce lung fibrosis

Researchers have developed two novel targeted therapies to slow down or stop fibrosis progression in people with idiopathic pulmonary fibrosis (IPF). These treatments aim to deliver potent drugs specifically to diseased cells, minimizing harm to healthy ones. The therapies will soon enter human clinical trials.

SourcePurdue University·JournalScience Translational Medicine·DateNov 11, 2020

All-terrain microrobot flips through a live colon

Researchers at Purdue University have developed a new type of microrobot that can navigate through the rough terrain of a human colon, enabling potential targeted drug delivery without causing side effects. The microrobots use magnetic fields to tumble and move through the colon, allowing for controlled release of medication.

SourcePurdue University·JournalMicromachines·DateOct 15, 2020

Novel testing platform designed for breast cancer cells

A Purdue University team has developed a magnetically moving cell culturing system to evaluate the impact of mechanical forces on breast cancer cells. The technology allows for the growth of 3D cancer cells in a new tissue environment, mimicking the physiological conditions found in the lungs during breathing.

SourcePurdue University·JournalAdvanced Functional Materials·DateOct 6, 2020

Ultrapotent compound may help treat C. diff, reduce recurrence

Researchers have created ultrapotent compounds to treat Clostridioides difficile (C. diff), a leading cause of healthcare-associated infections in the US. The compounds show significant advantages over current antibiotics, including minimum inhibitory concentration values as low as 0.003 μg/mL and improved prevention of recurrence.

SourcePurdue University·JournalJournal of Medicinal Chemistry·DateSep 25, 2020

Your paper notebook could become your next tablet

Purdue engineers have developed a simple printing process that renders any paper or cardboard packaging into easy-to-use human-machine interfaces. The technology allows for the fabrication of vertical pressure sensors without external batteries, harvesting energy from user contact.

SourcePurdue University·JournalNano Energy·DateSep 1, 2020

Invention offers new option for monitoring heart health

Researchers at Purdue University developed self-powered wearable devices that can monitor cardiovascular health using polyvinyl alcohol (PVA) and transform mechanical energy into power. These devices have the potential to be non-invasive, personalized, and cost-effective for detecting common heart diseases.

SourcePurdue University·JournalAdvanced Materials·DateJul 22, 2020