Coherent expansion of the motional state of a massive nanoparticle beyond its linear dimensions
R. Muffato, T.S. Georgescu, M. Carlesso, M. Paternostro, and H. Ulbricht

TL;DR
This paper demonstrates a significant advancement in quantum optomechanics by achieving a position diffusion in a massive nanoparticle that exceeds its physical size, enabling new tests of quantum physics at macroscopic scales.
Contribution
The study introduces a novel method of frequency modulation to induce unprecedented position diffusion in a levitated nanoparticle, surpassing previous limits.
Findings
Position diffusion length exceeds nanoparticle size
Achieved diffusion through frequency modulation
Surpassed previous diffusion benchmarks
Abstract
Quantum mechanics predicts that massive particles exhibit wave-like behavior. Matterwave interferometry has been able to validate such predictions through ground-breaking experiments involving microscopic systems like atoms and molecules. The wavefunction of such systems coherently extends over a distance much larger than their size, an achievement that is incredibly challenging for massive and more complex objects. Yet, reaching similar level of coherent diffusion will enable tests of fundamental physics at the genuinely macroscopic scale, as well as the development of quantum sensing apparata of great sensitivity. We report on experimentally achieving an unprecedented degree of position diffusion in a massive levitated optomechanical system through frequency modulation of the trapping potential. By starting with a pre-cooled state of motion and employing a train of sudden pulses yet…
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Taxonomy
Topicsnanoparticles nucleation surface interactions · Laser-Ablation Synthesis of Nanoparticles · Advanced Thermodynamics and Statistical Mechanics
