Direct observation of second-order atom tunnelling

被引:510
作者
Foelling, S.
Trotzky, S.
Cheinet, P.
Feld, M.
Saers, R.
Widera, A.
Mueller, T.
Bloch, I. [1 ]
机构
[1] Johannes Gutenberg Univ Mainz, Inst Phys, D-55099 Mainz, Germany
[2] Umea Univ, Dept Phys, S-90187 Umea, Sweden
[3] Univ Bonn, Inst Angew Phys, D-53115 Bonn, Germany
[4] Swiss Fed Inst Technol, Inst Quantum Elect, CH-8093 Zurich, Switzerland
关键词
D O I
10.1038/nature06112
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Tunnelling of material particles through a classically impenetrable barrier constitutes one of the hallmark effects of quantum physics. When interactions between the particles compete with their mobility through a tunnel junction, intriguing dynamical behaviour can arise because the particles do not tunnel independently. In single-electron or Bloch transistors, for example, the tunnelling of an electron or Cooper pair can be enabled or suppressed by the presence of a second charge carrier due to Coulomb blockade(1,2). Here we report direct, time-resolved observations of the correlated tunnelling of two interacting ultracold atoms through a barrier in a double-well potential. For the regime in which the interactions between the atoms are weak and tunnel coupling dominates, individual atoms can tunnel independently, similar to the case of a normal Josephson junction. However, when strong repulsive interactions are present, two atoms located on one side of the barrier cannot separate(3), but are observed to tunnel together as a pair in a second-order co-tunnelling process. By recording both the atom position and phase coherence over time, we fully characterize the tunnelling process for a single atom as well as the correlated dynamics of a pair of atoms for weak and strong interactions. In addition, we identify a conditional tunnelling regime in which a single atom can only tunnel in the presence of a second particle, acting as a single atom switch. Such second-order tunnelling events, which are the dominating dynamical effect in the strongly interacting regime, have not been previously observed with ultracold atoms. Similar second-order processes form the basis of superexchange interactions between atoms on neighbouring lattice sites of a periodic potential, a central component of proposals for realizing quantum magnetism(4-7).
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页码:1029 / U4
页数:5
相关论文
共 31 条
[1]   Direct observation of tunneling and nonlinear self-trapping in a single bosonic Josephson junction -: art. no. 010402 [J].
Albiez, M ;
Gati, R ;
Fölling, J ;
Hunsmann, S ;
Cristiani, M ;
Oberthaler, MK .
PHYSICAL REVIEW LETTERS, 2005, 95 (01)
[2]  
ALTMAN E, 2003, NEW J PHYS, V5
[3]   Controlled atom dynamics in a double-well optical lattice [J].
Anderlini, M ;
Sebby-Strabley, J ;
Kruse, J ;
Porto, JV ;
Phillips, WD .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2006, 39 (10) :S199-S210
[4]   THE RESONATING VALENCE BOND STATE IN LA2CUO4 AND SUPERCONDUCTIVITY [J].
ANDERSON, PW .
SCIENCE, 1987, 235 (4793) :1196-1198
[5]  
Auerbach A., 1998, Interacting Electrons and Quantum Magnetism
[6]   COULOMB BLOCKADE OF SINGLE-ELECTRON TUNNELING, AND COHERENT OSCILLATIONS IN SMALL TUNNEL-JUNCTIONS [J].
AVERIN, DV ;
LIKHAREV, KK .
JOURNAL OF LOW TEMPERATURE PHYSICS, 1986, 62 (3-4) :345-373
[7]  
Averin DV, 2000, FORTSCHR PHYS, V48, P1055, DOI 10.1002/1521-3978(200009)48:9/11<1055::AID-PROP1055>3.0.CO
[8]  
2-1
[9]   Persistent entanglement in arrays of interacting particles [J].
Briegel, HJ ;
Raussendorf, R .
PHYSICAL REVIEW LETTERS, 2001, 86 (05) :910-913
[10]   Electron cotunneling in a semiconductor quantum dot [J].
De Franceschi, S ;
Sasaki, S ;
Elzerman, JM ;
van der Wiel, WG ;
Tarucha, S ;
Kouwenhoven, LP .
PHYSICAL REVIEW LETTERS, 2001, 86 (05) :878-881