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Thermal hysteresis controlled reconfigurable MoS2 nanomechanical resonators

机译:热磁滞控制可重构二硫化钼纳米机械谐振器

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摘要

Two-dimensional (2D) structures from layered materials have enabled a number of novel devices including resonant nanoelectromechanical systems (NEMS). 2D NEMS resonators are highly responsive to strain, allowing their resonance frequencies to be efficiently tuned over broad ranges, which is a feature difficult to attain in conventional micromachined resonators. In electrically configured and tuned devices, high external voltages are typically required to set and maintain different frequencies, limiting their applications. Here we experimentally demonstrate molybdenum disulfide (MoS2) nanomechanical resonators that can be reconfigured between different frequency bands with zero maintaining voltage in a non-volatile fashion. By leveraging the thermal hysteresis in these 2D resonators, we use heating and cooling pulses to reconfigure the device frequency, with no external voltage required to maintain each frequency. We further show that the frequency spacing between the bands can be tuned by the thermal pulse strength, offering full control over the programmable operation. Such reconfigurable MoS2 resonators may provide an alternative pathway toward small-form-factor and low-power tunable devices in future reconfigurable radio-frequency circuits with multi-band capability.
机译:二维(2 d)从分层结构材料使大量的新型设备包括谐振nanoelectromechanical系统(NEMS)。压力,让他们的共振频率在广泛的范围,有效地调整传统的功能难以实现微型机械谐振器。外部设备进行配置和优化,高电压通常需要设置和保持不同的频率,限制他们应用程序。二硫化钼二硫化钼纳米机械谐振器之间的重新配置不同的频段和零维护电压非易失性的方式。这些二维谐振器的热滞现象,我们使用加热和冷却脉冲来重新配置设备的频率,没有外部电压维护每个所需的频率。显示的频率波段之间的间距可以通过调优的热脉冲强度、提供完整的控制可编程操作。可以提供另一个途径对吗小型和低功率可调设备在未来的可重构射频电路与多波段的能力。

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