Category: U.S. Department of Defense

  • Engineers discover a new class of materials that passively harvest water from air

    (Funded by the U.S. National Science Foundation and the U.S. Department of Defense)
    Researchers at Penn Engineering have made a surprising discovery: a new type of material that can pull water from the air and release it onto surfaces without any need for external energy. Originally stumbled upon by accident during unrelated experiments, the material combines water-attracting and water-repelling components at the nanoscale in a way that allows it to both capture moisture and push it out as visible droplets. This discovery could lead to new ways of collecting water in dry areas or cooling buildings and electronics using only evaporation without the need for any external energy.

  • ‘Sharkitecture:’ A Nanoscale Look Inside a Blacktip Shark’s Skeleton

    (Funded by the U.S. Department of Defense and the U.S. National Science Foundation)
    Scientists at Florida State University have mapped the internal structure of blacktip sharks in unprecedented detail. At the nanoscale, the researchers observed tiny needle-like bioapatite crystals – a mineral also found in human bones – aligned with strands of collagen. Even more intriguing, the team discovered helical fiber structures primarily based on collagen – suggesting a sophisticated, layered design optimized to prevent cracks from spreading. Under strain, fiber and mineral networks work together to absorb and distribute force, contributing to the shark’s resilience and flexibility. This detailed understanding of how sharks build such tough yet adaptable structures could inspire the creation of new, more resilient materials for medical implants or protective gear.

  • Smart bandage clears new hurdle: Monitors chronic wounds in human patients

    (Funded by the U.S. Department of Defense, the U.S. National science Foundation and the National Institutes of Health)
    In 2023, researchers at Caltech developed a smart bandage that can provide real-time data about chronic wounds and accelerate the healing process by applying medication or electrical fields to stimulate tissue growth. Now, the researchers have shown that an improved version of their bandage can continually sample fluid, which the body sends to wound sites as part of the inflammatory response. The bandage is composed of a flexible, biocompatible polymer strip that integrates a nanoengineered biomarker sensor array, which is disposable for hygiene and single-use applications. The system also includes a reusable printed circuit board that handles signal processing and wireless data transmission to a user interface, such as a smartphone.

  • Metasurfaces: Bilayer device can control many forms of polarized light

    (Funded by the U.S. National Science Foundation and the U.S. Department of Defense)
    Engineers at Harvard University have created a bilayer metasurface made of two stacked layers of titanium dioxide nanostructures. Almost a decade ago, the engineers had unveiled the world’s first visible-spectrum metasurfaces – ultra-thin, flat devices patterned with nanostructures that could precisely control the behavior of light and enable applications in imaging systems, augmented reality, and communications. But the single-layer nanostructure design has been in some ways limiting. For example, previous metasurfaces put specific requirements on the manipulation of light’s polarization in order to control the light’s behavior. Using the facilities of the Center for Nanoscale Systems at Harvard, the engineers came up with a fabrication process for freestanding, sturdy structures of two metasurfaces that hold strongly together but do not affect each other chemically.

  • Remediation technique turns PFAS waste into graphene

    (Funded by the U.S. Department of Defense)
    Rice University researchers have developed an innovative solution to a pressing environmental challenge: removing and destroying per- and polyfluoroalkyl substances (PFAS), commonly called “forever chemicals.” By combining granular activated carbon saturated with PFAS and mineralizing agents like sodium or calcium salts, the researchers applied a high voltage to generate temperatures exceeding 3,000 degrees Celsius in under one second. The intense heat breaks down the strong carbon-fluorine bonds in PFAS, converting them into inert, nontoxic fluoride salts. Simultaneously, the granular activated carbon is upcycled into graphene, a valuable material used in industries ranging from electronics to construction.