BEGIN:VCALENDAR
VERSION:2.0
X-WR-CALNAME;VALUE=TEXT:Arno Rauschenbeutel: Joint Quantum Seminar
PRODID:-//Harvard events data//EN
BEGIN:VEVENT
UID:event_1468089_0
SUMMARY:Arno Rauschenbeutel: Joint Quantum Seminar
DESCRIPTION:<p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><strong>Joint Quantum SeminarWednesday, October 9th4:00 PM, Jefferson 250</strong></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p><p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><u><span lang="DE">Arno Rauschenbeutel (Humboldt-Universität zu Berlin)</span></u></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p><p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><span>“Generation of correlated photons using non-interacting atoms weakly coupled to a guided optical mode”</span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p><p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><span>Typical schemes for generating correlated states of light require a highly nonlinear medium that is strongly coupled to an optical mode. However, unavoidable dissipative processes, which cause photon loss and blur nonlinear quantum effects, often impede such methods. In this seminar, I will report on a recent experimental demonstration of the opposite approach [1]. Using a strongly dissipative, weakly coupled medium, we generate and study strongly correlated states of light [2]. Specifically, we study the transmission of resonant light through an ensemble of non-interacting atoms that weakly couple to a guided optical mode. Dissipation removes uncorrelated photons while preferentially transmitting highly correlated photons created through collectively enhanced nonlinear interactions. As a result, the transmitted light constitutes a strongly correlated many-body state of light, revealed in the second-order correlation function. The latter exhibits strong antibunching or bunching, depending on the optical depth of the atomic ensemble. The demonstrated mechanism opens a new avenue for generating nonclassical states of light and for exploring correlations of photons in non-equilibrium systems using a mix of nonlinear and dissipative processes. Furthermore, our scheme may turn out useful in quantum information science. For example, it offers a fundamentally new approach to realizing single photon sources, which may outperform sources based on single quantum emitters with comparable coupling strength [3].</span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p><p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><strong>References</strong></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p><p style="margin:0in0in0.0001pt;text-align:start;-webkit-text-stroke-width:0px">	<span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><span>[1] S. Mahmoodian, M. Čepulkovskis, S. Das, P. Lodahl, K. Hammerer, and A. S. Sørensen, Phys. Rev. Lett. <strong>121</strong>, 143601 (2018).</span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span><br><span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><span>[2] A. Prasad, J. Hinney, S. Mahmoodian, K. Hammerer, S. Rind, P. Schneeweiss, A. S. Sørensen, J. Volz, and A. Rauschenbeutel, submitted (2019).</span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span><br><span><span style="sans-serif"><span style="caret-color:#000000"><span style="color:#000000"><span style="font-style:normal"><span style="font-variant-caps:normal"><span style="font-weight:normal"><span style="letter-spacing:normal"><span style="orphans:auto"><span style="text-transform:none"><span style="white-space:normal"><span style="widows:auto"><span style="word-spacing:0px"><span style="-webkit-text-size-adjust:auto"><span style="text-decoration:none"><span>[3] European patent pending (PCT/EP2019/075386)</span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></span></p>
LOCATION:Jefferson 250
STATUS:CONFIRMED
DTSTART:20191009T200000Z
DTEND:20191009T220000Z
END:VEVENT
END:VCALENDAR