Multimode laser cooling and ultra-high sensitivity force sensing with nanowires

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作者
Mahdi Hosseini
Giovanni Guccione
Harry J. Slatyer
Ben C. Buchler
Ping Koy Lam
机构
[1] Centre for Quantum Computation and Communication Technology,Department of Quantum Science
[2] Research School of Physics and Engineering,undefined
[3] The Australian National University,undefined
[4] Present address: Massachusetts Institute of Technology,undefined
[5] MIT-Harvard Center for Ultra Cold Atoms,undefined
[6] Cambridge,undefined
[7] Massachusetts 02139,undefined
[8] USA,undefined
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Nature Communications | / 5卷
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摘要
Photo-induced forces can be used to manipulate and cool the mechanical motion of oscillators. When the oscillator is used as a force sensor, such as in atomic force microscopy, active feedback is an enticing route to enhance measurement performance. Here we show broadband multimode cooling of −23 dB down to a temperature of 8±1 K in the stationary regime. Through the use of periodic quiescence feedback cooling, we show improved signal-to-noise ratios for the measurement of transient signals. We compare the performance of real feedback to numerical post processing of data and show that both methods produce similar improvements to the signal-to-noise ratio of force measurements. We achieved a room temperature force measurement sensitivity of <2 × 10−16N with integration time of less than 0.1 ms. The high precision and fast force microscopy results presented will potentially benefit applications in biosensing, molecular metrology, subsurface imaging and accelerometry.
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