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NASA’s Jet Propulsion Laboratory, commercial companies, and academic institutions together are developing the first space-based quantum sensors for gravitational measurement. Two groups of very cold rubidium atoms will be used as weights for the Quantum Gravity Gradiometer Pathfinder (QGGPf) instrument, ensuring accurate measurements over long periods. Measuring gravity with a volume of 0.3 cubic yards (0.25 cubic meters) and weighing just over 275 pounds (125 kg), the instrument will be smaller and lighter than conventional space-based gravity instruments.

Quantum sensors offer enormous promise for sensitivity; estimates suggest they could be as much as ten times more sensitive in tracking gravity than conventional sensors. Approved to begin at the end of the decade, the technology validation project aims to test novel atomic-scale atomic manipulation of interactions between light and matter. To progress the sensor head technology and the laser optical system, NASA is working with small companies. The QGGPf instrument could lead to planetary science and fundamental physics applications.

NASA’s Quantum Gravity Sensor to Reveal Earth’s Subsurface

According to a NASA post, the Jet Propulsion Laboratory, private companies, and academic institutions are developing the first space-based quantum sensor for measuring gravity. This mission, supported by NASA’s Earth Science Technology Office (ESTO), will pave the way for groundbreaking observations of everything from petroleum reserves to global supplies of fresh water. Its gravitational field is dynamic and changing every day as geologic processes distribute mass throughout its surface. Sensitive instruments called gravity gradiometers can map the subtleties of Earth’s gravitational field and link them to belowground structures such as mineral deposits and aquifers.

The Quantum Gravity Gradiometer Pathfinder (QGGPf) instrument will use two clouds of ultracold rubidium atoms as test masses. The difference in acceleration between these matter waves will measure the difference in acceleration between these matter waves to locate gravitational anomalies. This system allows for space-based gravity measurements to remain accurate over long periods and is smaller and lighter than traditional space-based gravity instruments.

NASA Tests Atomic-Scale Tech to Advance Space Sensors and Earth Science

The main purpose of this technology validation mission is to test a collection of novel technologies for manipulating interactions between light and matter at the atomic scale. With JPL partnering with AOSense and Infleqtion to enhance sensor head technology and NASA’s Goddard Space Flight Center working with Vector Atomic to advance the laser optical system, the project involves notable partnerships between NASA and a few quantum-focused entrepreneurs.

Ultimately, the findings of this Pathfinder project might increase our capacity to explore Earth, understand far-off worlds, and value the role gravity plays in creating the universe.

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New Shortcut Lets Scientists Run Complex Quantum Models on a Laptop

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A University at Buffalo team has redesigned the truncated Wigner approximation into an easy, plug-and-play template that lets scientists run complex quantum simulations on everyday laptops. The method works for open systems, slashes computing demands, and helps free supercomputers for the hardest quantum problems.

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Glaciers Speed Up in Summer and Slow in Winter, New Global Map Reveals

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A new global map of glacier speeds, built from nearly a decade of satellite observations, shows that glaciers consistently move faster in summer and slower in winter. Meltwater acts as a natural lubricant, accelerating flow during warm months. Scientists warn that glaciers with strong seasonal shifts are likely to speed up long-term, adding to future sea-level rise.

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Engineers Turn Lobster Shells Into Robot Parts That Lift, Grip and Swim

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Engineers have transformed discarded crustacean shells into functional biohybrid robots by softening the shell segments, adding elastomers, and attaching motors. These recycled structures can lift weight, grasp delicate items, and even propel small swimmers. The project demonstrates how food waste can become a sustainable robotics resource, though challenges remain wi…

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