Scanning Tunneling Microscopy Observation of Phonon Condensate

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作者
Igor Altfeder
Andrey A. Voevodin
Michael H. Check
Sarah M. Eichfeld
Joshua A. Robinson
Alexander V. Balatsky
机构
[1] Nanoelectronic Materials Branch,Department of Materials Science and Engineering
[2] Air Force Research Laboratory,Department of Materials Science and Engineering and The Center for Two
[3] University of North Texas,Dimensional and Layered Materials
[4] The Pennsylvania State University,undefined
[5] University Park,undefined
[6] Institute for Materials Science,undefined
[7] Los Alamos National Laboratory,undefined
[8] Nordita,undefined
[9] Center for Quantum Materials,undefined
[10] KTH Royal Institute of Technology and Stockholm University,undefined
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摘要
Using quantum tunneling of electrons into vibrating surface atoms, phonon oscillations can be observed on the atomic scale. Phonon interference patterns with unusually large signal amplitudes have been revealed by scanning tunneling microscopy in intercalated van der Waals heterostructures. Our results show that the effective radius of these phonon quasi-bound states, the real-space distribution of phonon standing wave amplitudes, the scattering phase shifts, and the nonlinear intermode coupling strongly depend on the presence of defect-induced scattering resonance. The observed coherence of these quasi-bound states most likely arises from phase- and frequency-synchronized dynamics of all phonon modes, and indicates the formation of many-body condensate of optical phonons around resonant defects. We found that increasing the strength of the scattering resonance causes the increase of the condensate droplet radius without affecting the condensate fraction inside it. The condensate can be observed at room temperature.
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