Dr.. JOSHIN JOSEPH | Computational Methods | Innovative Research Award #worldresearchawards #GlobalEnergyAwards
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In a groundbreaking experiment at the Technion Faculty of Physics , researchers demonstrated the transfer of atoms via quantum tunneling using optical tweezers. This novel method, which strategically avoids trapping atoms in the middle tweezer, represents a notable stride toward innovative quantum technologies. Quantum Tunneling in Optical Tweezers A new experiment at the Technion Faculty of Physics demonstrates how atoms can be transferred between locations using quantum tunneling with optical tweezers. Led by Prof. Yoav Sagi and doctoral student Yanay Florshaim from the Solid State Institute, this research was published recently in Science Advances. The experiment relies on optical tweezers , a powerful tool that uses focused laser beams to trap and manipulate tiny particles like atoms, molecules, and even living cells. Here’s how it works: when light interacts with matter, it creates a force proportional to the light’s intensity. This force, though too weak to impact larger objects,...
Fourth Dimension The fourth dimension is a fascinating concept that has captured the imaginations of scientists, mathematicians, and artists for centuries. Unlike our three-dimensional world, which is limited by the linear flow of time, the fourth dimension is a realm of space and time that exists beyond our everyday experience. One way to visualize the fourth dimension is through the use of a hypercube, also known as a tesseract. A hypercube is a cube within a cube, with additional lines and edges connecting the vertices of the two cubes. It's impossible to construct in our three-dimensional world, but it provides a glimpse into what the fourth dimension might look like. Another way to understand the fourth dimension is through the concept of a wormhole, a theoretical passage through space-time that connects two distant points in the universe. A wormhole is like a shortcut through the fabric of space-time, allowing us to travel vast distances in an instant. While there is no de...
Since the launch of the Large Hadron Collider, researchers have been studying Higgs bosons and searching for signs of physics beyond the current model of elementary particles. Scientists working with the ATLAS detector have combined these two goals: their latest analysis has not only deepened our understanding of how Higgs bosons interact with each other but also placed stronger limits on potential “new physics” phenomena. The Large Hadron Collider (LHC) achieved a major success with the discovery of the Higgs boson, the final missing piece of the Standard Model and a key to understanding the origin of mass in elementary particles. However, despite this breakthrough, researchers have yet to find any evidence of physics beyond the Standard Model, which has been a source of ongoing frustration. Scientists at CERN (the European Organization for Nuclear Research) in Geneva are now working to address this by improving the precision of Higgs boson measurements while actively searching for ...
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