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      Approaching the quantum limit of a nanomechanical resonator.

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          Abstract

          By coupling a single-electron transistor to a high-quality factor, 19.7-megahertz nanomechanical resonator, we demonstrate position detection approaching that set by the Heisenberg uncertainty principle limit. At millikelvin temperatures, position resolution a factor of 4.3 above the quantum limit is achieved and demonstrates the near-ideal performance of the single-electron transistor as a linear amplifier. We have observed the resonator's thermal motion at temperatures as low as 56 millikelvin, with quantum occupation factors of NTH = 58. The implications of this experiment reach from the ultimate limits of force microscopy to qubit readout for quantum information devices.

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          Author and article information

          Journal
          Science
          Science (New York, N.Y.)
          American Association for the Advancement of Science (AAAS)
          1095-9203
          0036-8075
          Apr 02 2004
          : 304
          : 5667
          Affiliations
          [1 ] Laboratory for Physical Sciences, 8050 Greenmead Drive, College Park, MD 20740, USA.
          Article
          304/5667/74
          10.1126/science.1094419
          15064412
          bb791313-d5fa-4559-b2a3-b9e74e9012c6
          History

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