论文标题

非线性纳米力学谐振器接近量子基态

Nonlinear nanomechanical resonators approaching the quantum ground state

论文作者

Samanta, C., De Bonis, S. L., Møller, C. B., Tormo-Queralt, R., Yang, W., Urgell, C., Stamenic, B., Thibeault, B., Jin, Y., Czaplewski, D. A., Pistolesi, F., Bachtold, A.

论文摘要

力学中的一个空旷的问题是,是否可以将机械谐振器与接近量子基态的振动进行非线性。这需要工程的机械非线性远远超出了迄今为止的实现。在这里,我们发现了一种机制,可以通过将纳米管谐振器的振动与单电子隧道耦合以及在Ultrastrong耦合方案中操作系统,从而提高了非线性。值得注意的是,在降低温度时,热振动变得高度非线性。最低温度下的平均振动幅度是零点运动的13倍,大约42%的热能存储在电势的非谐波部分中。我们的工作为实现机械Schrodinger Cat状态[1],机械量子台[2,3]和量子模拟器铺平了道路,从而模仿了电子 - phonon耦合[4]。

An open question in mechanics is whether mechanical resonators can be made nonlinear with vibrations approaching the quantum ground state. This requires engineering a mechanical nonlinearity far beyond what has been realized thus far. Here we discovered a mechanism to boost the Duffing nonlinearity by coupling the vibrations of a nanotube resonator to single-electron tunneling and by operating the system in the ultrastrong coupling regime. Remarkably, thermal vibrations become highly nonlinear when lowering the temperature. The average vibration amplitude at the lowest temperature is 13 times the zero-point motion, with approximately 42% of the thermal energy stored in the anharmonic part of the potential. Our work paves the way for realizing mechanical Schrodinger cat states [1], mechanical qubits [2, 3], and quantum simulators emulating the electron-phonon coupling [4].

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