TY - JOUR
T1 - Strain-Controlled Quantum Dot Fine Structure for Entangled Photon Generation at 1550 nm
AU - Lettner, Thomas
AU - Gyger, Samuel
AU - Zeuner, Katharina D.
AU - Schweickert, Lucas
AU - Steinhauer, Stephan
AU - Reuterskiöld-Hedlund, Carl
AU - Stroj, Sandra
AU - Rastelli, Armando
AU - Hammar, Mattias
AU - Trotta, Rinaldo
AU - Jöns, Klaus
AU - Zwiller, Val
PY - 2021/12/22
Y1 - 2021/12/22
N2 - Entangled photon generation at 1550 nm in the telecom C-band is of critical importance as it enables the realization of quantum communication protocols over long distance using deployed telecommunication infrastructure. InAs epitaxial quantum dots have recently enabled on-demand generation of entangled photons in this wavelength range. However, time-dependent state evolution, caused by the fine-structure splitting, currently limits the fidelity to a specific entangled state. Here, we show fine-structure suppression for InAs quantum dots using micromachined piezoelectric actuators and demonstrate generation of highly entangled photons at 1550 nm. At the lowest fine-structure setting, we obtain a maximum fidelity of 90.0 ± 2.7% (concurrence of 87.5 ± 3.1%). The concurrence remains high also for moderate (weak) temporal filtering, with values close to 80% (50%), corresponding to 30% (80%) of collected photons, respectively. The presented fine-structure control opens the way for exploiting entangled photons from quantum dots in fiber-based quantum communication protocols.
AB - Entangled photon generation at 1550 nm in the telecom C-band is of critical importance as it enables the realization of quantum communication protocols over long distance using deployed telecommunication infrastructure. InAs epitaxial quantum dots have recently enabled on-demand generation of entangled photons in this wavelength range. However, time-dependent state evolution, caused by the fine-structure splitting, currently limits the fidelity to a specific entangled state. Here, we show fine-structure suppression for InAs quantum dots using micromachined piezoelectric actuators and demonstrate generation of highly entangled photons at 1550 nm. At the lowest fine-structure setting, we obtain a maximum fidelity of 90.0 ± 2.7% (concurrence of 87.5 ± 3.1%). The concurrence remains high also for moderate (weak) temporal filtering, with values close to 80% (50%), corresponding to 30% (80%) of collected photons, respectively. The presented fine-structure control opens the way for exploiting entangled photons from quantum dots in fiber-based quantum communication protocols.
UR - https://www.scopus.com/pages/publications/85121759595
U2 - 10.1021/acs.nanolett.1c04024
DO - 10.1021/acs.nanolett.1c04024
M3 - Article
C2 - 34894699
SN - 1530-6992
VL - 21
SP - 10501
EP - 10506
JO - Nano Letters
JF - Nano Letters
IS - 24
ER -