Could randomness be the creative power of the universe? At the quantum level, particles behave probabilistically, meaning that their position or momentum can only be predicted in probabilities, not certainties. In conversation, artist Libby Heaney and Kay Watson (Head of Arts Technologies at Serpentine) dive deeper into quantum computing and art, with Libby Heaney sharing how she incorporated the randomness of quantum physics into her creative practice. Read the full conversation here: https://lnkd.in/eCgJ7KwC
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This laser exceeded the speed of light: It broke a law of the universe: An innovative and exciting laser experiment has achieved what we would have never thought or imagined, and that is, exceeding the speed of light which is something that has been attributed to be impossible based on Albert Einstein’s theory of relativity. This new experiment not only challenges the way we think or perceive physics, but it enhances fields like quantum computing and communication technology. https://lnkd.in/e_Ac9J9s
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WE WILL ALWAYS KEEP GROWING.🔥 Welcome, innovators and visionaries. We gather today at the frontier of science, where quantum computing meets theoretical physics to challenge our understanding of reality and time. Introducing the Quantum Echo Transmitter (QET) - which sends messages across time. The QET explores the possibility of communicating with the past by harnessing quantum entanglement and theoretical tachyon particles. This device isn't just about transmitting information; it's about redefining our relationship with time and pushing the boundaries of human potential. The QET embodies a fundamental question: Can we interact with history? And how would this reshape our future? 🔗https://lnkd.in/eNyfsAeN
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I find the observer effect in entanglement to be a particularly fascinating aspect of quantum mechanics. It highlights the counterintuitive nature of the quantum world, challenging our classical understanding of reality. This phenomenon underscores the interconnectedness of entangled particles and the pivotal role that observation plays in shaping the behavior of quantum systems. It's central to quantum information theory and has significant implications for quantum computing and quantum communication technologies. The idea that observation can instantaneously influence distant particles opens up new possibilities and questions about the very fabric of reality. #quantum #quantumentanglement #observereffect
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Welcome, visionaries and dreamers! 🚀 Today marks a turning point where the world of sci-fi intertwines with scientific reality. Together, we explore a concept that transcends our understanding of reality, time, and existence itself. This revolutionary idea defies the confines of conventional thinking and invites us to see beyond the present moment into a world where communication knows no temporal bounds. At the intersection of quantum computing and theoretical physics, we present the Quantum Echo Transmitter—a device that challenges what we know of time and information. Imagine a future where messages are not just sent across space but across time itself. This remarkable concept bridges the past and the future, harnessing the mysterious potential of quantum entanglement and theoretical tachyon particles. The Quantum Echo Transmitter isn’t merely a device; it's a beacon of human potential. It prompts us to question the very nature of time, causality, and our place in the universe. By pushing the frontiers of quantum science, we redefine what is possible and embrace a vision where the past is not only a memory but a tangible, reachable reality. Join us as we embark on a journey to unravel the mysteries of time, shatter the boundaries of quantum science, and dare to challenge the immutable laws of the universe. Together, we will pioneer a new era of innovation, exploration, and understanding. Welcome to the era of the Quantum Echo Transmitter—a world where time is not just experienced, but spoken. Welcome to a future where boundaries are meant to be crossed, and the past becomes a reachable reality. https://lnkd.in/d9WXwPfU
WE WILL ALWAYS KEEP GROWING.🔥 Welcome, innovators and visionaries. We gather today at the frontier of science, where quantum computing meets theoretical physics to challenge our understanding of reality and time. Introducing the Quantum Echo Transmitter (QET) - which sends messages across time. The QET explores the possibility of communicating with the past by harnessing quantum entanglement and theoretical tachyon particles. This device isn't just about transmitting information; it's about redefining our relationship with time and pushing the boundaries of human potential. The QET embodies a fundamental question: Can we interact with history? And how would this reshape our future? 🔗https://lnkd.in/eNyfsAeN
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The International Year of Quantum is here! The link below takes you to a special archival issue celebrating Quantum Mechanics! I hope you enjoy it. https://lnkd.in/ghsP4rex
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Ever wonder if the universe is just one giant quantum computer? Imagine if qubits—the fundamental units of a quantum computer—could represent the vibrational states of strings in string theory. Since everything in the universe has a wave function, in theory, a sufficiently powerful quantum computer could simulate the entire universe by encoding its quantum states and interactions! Is reality just a massive computation, where the fabric of existence is made up of quantum information? Are we living in a simulation run on some cosmic quantum computer? 🤔 Quantum physics is stranger than fiction—and it just might hold the key to unlocking the mysteries of our universe. #QuantumComputing #StringTheory #SimulationHypothesis
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The Mystery of the Quantum Observer https://lnkd.in/daVScv9v Nice to receive a kind autonomous (!) commentary on this complex topic. More to come.
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Superluminal observers reshape causality, quantum mechanics, and relativity, offering new insights into the universe's fundamental laws.
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What is a Holographic Wormhole? A holographic wormhole is a theoretical construct used in physics to simplify some of the most complex problems in the universe, where quantum mechanics (the science of the very small) and general relativity (the science of the very large) intersect. These areas often involve black holes and require a way to merge these two theories, which traditionally do not align well. How Does Quantum Computing Help? Quantum computing provides a unique advantage in simulating phenomena where traditional computing fails to capture the nuances of quantum mechanics. Here’s how it aids in simulating a holographic wormhole: +Quantum Entanglement: Quantum computers use principles like quantum entanglement, where particles become interconnected and the state of one (whether it’s spin, position, etc.) can depend on the state of another, no matter the distance between them. +Simplifying Complex Systems: By simulating a wormhole, quantum computers allow physicists to bypass the need for general relativity, focusing instead on quantum effects that can act as a substitute for gravitational effects.
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