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ファイル | 記述 | サイズ | フォーマット | |
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PhysRevA.99.033609.pdf | 3.12 MB | Adobe PDF | 見る/開く |
タイトル: | Experimental determination of Bose-Hubbard energies |
著者: | Nakamura, Yusuke Takasu, Yosuke ![]() ![]() ![]() Kobayashi, Jun Asaka, Hiroto Fukushima, Yoshiaki Inaba, Kensuke Yamashita, Makoto Takahashi, Yoshiro ![]() ![]() ![]() |
著者名の別形: | 中村, 悠介 高須, 洋介 小林, 淳 浅賀, 洋人 福島, 由章 稲葉, 謙介 山下, 眞 高橋, 義朗 |
発行日: | 12-Mar-2019 |
出版者: | American Physical Society (APS) |
誌名: | Physical Review A |
巻: | 99 |
号: | 3 |
論文番号: | 033609 |
抄録: | We present an experimental measurement of the ensemble averages of both the kinetic and interaction energies of the three-dimensional Bose-Hubbard model at finite temperature and various optical lattice depths across weakly to strongly interacting regimes, for an almost unit filling factor within single-band tight-binding approximation. The kinetic energy is obtained through Fourier transformation of a time-of-flight signal, and the interaction energy is measured using a newly developed atom-number-projection spectroscopy technique, by exploiting an ultranarrow optical transition of two-electron atoms. The obtained experimental results can be used as benchmarks for state-of-the-art numerical methods of quantum many-body theory. As an illustrative example, we compare the measured energies with numerical calculations involving the Gutzwiller and cluster-Gutzwiller approximations, assuming realistic trap potentials and particle numbers at nonzero entropy (finite temperature); we obtain good agreement without fitting parameters. We also discuss the possible application of this method to temperature estimations for atoms in optical lattices using the thermodynamic relation. This study offers a unique advantage of cold atom system for “quantum simulators.” |
著作権等: | ©2019 American Physical Society |
URI: | http://hdl.handle.net/2433/244787 |
DOI(出版社版): | 10.1103/PhysRevA.99.033609 |
出現コレクション: | 学術雑誌掲載論文等 |

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