Control of spontaneously emitted light lies at the heart of quantum optics. It is essential for diverse applications ranging from miniature lasers and light-emitting diodes(1-5), to single-photon sources for quantum information(6-8), and to solar energy harvesting(9). To explore such new quantum optics applications, a suitably tailored dielectric environment is required in which the vacuum fluctuations that control spontaneous emission can be manipulated(10,11). Photonic crystals provide such an environment: they strongly modify the vacuum fluctuations, causing the decay of emitted light to be accelerated or slowed down(12,13), to reveal unusual statistics(14), or to be completely inhibited in the ideal case of a photonic bandgap(1,15). Here we study spontaneous emission from semiconductor quantum dots embedded in inverse opal photonic crystals(16). We show that the spectral distribution and time-dependent decay of light emitted from excitons confined in the quantum dots are controlled by the host photonic crystal. Modified emission is observed over large frequency bandwidths of 10%, orders of magnitude larger than reported for resonant optical microcavities(17). Both inhibited and enhanced decay rates are observed depending on the optical emission frequency, and they are controlled by the crystals' lattice parameter. Our experimental results provide a basis for all-solid-state dynamic control of optical quantum systems(18).
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Univ Southampton, Dept Phys & Astron, Southampton SO17 1BJ, Hants, EnglandNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Dovzhenko, Dmitriy
Martynov, Igor
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Martynov, Igor
Samokhvalov, Pavel
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Samokhvalov, Pavel
Osipov, Evgeniy
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Osipov, Evgeniy
Lednev, Maxim
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Lednev, Maxim
Chistyakov, Alexander
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Chistyakov, Alexander
Karaulov, Alexander
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Sechenov First Moscow State Med Univ, Moscow 119146, RussiaNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Karaulov, Alexander
Nabiev, Igor
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Natl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
Sechenov First Moscow State Med Univ, Moscow 119146, Russia
Univ Reims, LRN EA4682, Lab Rech Nanosci, F-51100 Reims, FranceNatl Res Nucl Univ MEPhl, Lab Nanobioengn, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia