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Space bubbles promise to advance cancer detection | R&D World


Space bubbles promise to advance cancer detection | R&D World

Professor Tengfei Luo in his lab with graduate student Qiushi Zhang. [University of Notre Dame]

Featured in Upward, the official magazine of the ISS National Laboratory, the research focuses on manipulating bubbles in microgravity to efficiently collect and concentrate microscopic particles from liquid samples such as blood.

Leading the research team focused on the project was Professor Tengfei Luo, director of the Molecular/Nano-Scale Transport & Energy Research Laboratory (MONSTER Lab) at the University of Notre Dame.

"The technology currently available to screen for early, asymptomatic cancer before a tumor is visible during imaging is very limited to just a few cancers," said Luo, in the Upward article. "If cancer screening using our bubble technology in space is democratized and made inexpensive, many more cancers can be screened, and everyone can benefit. It's something we may be able to integrate into annual exams. It sounds far-fetched, but it's achievable."

The microgravity-enhanced bubble technology also shows promise for environmental applications, as Luo's team has successfully used it to detect low concentrations of microplastics, including nanoplastics between 1 and 1,000 nanometers in size, in ocean water samples.

Under Earth's gravity, buoyancy makes bubbles rise in boiling water, while thermal convection creates fluid currents that detach them from surfaces. These forces restrict bubble growth and stability. Yet in microgravity, buoyancy and convection are minimal. These conditions allow bubbles to grow larger and remain attached to surfaces for extended periods. Consequently, the prolonged contact between the bubble and the surrounding liquid, combined with surface tension gradients known as the Marangoni effect, generates unique fluid dynamics that researchers can harness to concentrate particles.

Inside CubeLab, researchers used lasers to precisely heat nanoparticles within liquid samples, creating bubbles at specific locations. The high-speed cameras captured the bubbles' growth and interaction with the surrounding particles in the absence of Earth's gravity. This precise bubble generation allows for controlled studies of bubble dynamics and their interaction with particles

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