TY - CONF A1 - Hönig, Gerald M. O. A1 - Schlichting, S. A1 - Wagner, M. R. A1 - Müssener, J. A1 - Hill, P. A1 - Grieb, T. A1 - Teubert, J. A1 - Schörmann, J. A1 - Rosenauer, A. A1 - Eickhoff, M. A1 - Hoffmann, A. A1 - Callsen, G. T1 - QCSE tuning in polar GaN/AlN heterostructures N2 - We show both theoretically and experimentally how the encapsulation of the active region by additional guard layers can be used to achieve a significant reduction of the built-in electric fields in polar nitride heterostructures. This reduction of the QCSE results in a strongly enhanced emission intensity and faster recombination dynamics in the active region. In particular we are able to shift the emission energy of 4-nm-thick GaN nano-discs up to 3.32 eV, which is just 150 meV below the bulk GaN bandgap as compared to a red-shift of about 1 eV in a conventional heterostructure with the same thickness. T2 - SPIE. PHOTONICS WEST OPTO CY - San Francisco, CA, USA DA - 29.01.2018 KW - QCSE KW - Piezopolarization KW - Spontaneous Polarization KW - IFGARD KW - Nanoheterostructures KW - Nonpolar PY - 2018 AN - OPUS4-43383 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Schlichting, S. A1 - Hönig, Gerald M. O. A1 - Müßener, J. A1 - Hille, P. A1 - Grieb, T. A1 - Teubert, J. A1 - Schörmann, J. A1 - Wagner, M. R. A1 - Rosenauer, A. A1 - Eickhoff, M. A1 - Hoffmann, A. A1 - Callsen, G. T1 - Tuning of the Quantum-Confined Stark Effect in Wurtzite [000-1] Group-III-Nitride Nanostructures by the Internal-Field-Guarded-Active-Region Design N2 - Recently, we suggested an unconventional approach [the so-called Internal-Field-Guarded-Active-Region Design (IFGARD)] for the elimination of the crystal polarization field induced quantum confined Stark effect (QCSE) in polar semiconductor heterostructures. And in this work, we demonstrate by means of micro-photoluminescence techniques the successful tuning as well as the elimination of the QCSE in strongly polar [000-1] wurtzite GaN/AlN nanodiscs while reducing the exciton life times by more than two orders of magnitude. The IFGARD based elimination of the QCSE is independent of any specific crystal growth procedures. Furthermore, the cone-shaped geometry of the utilized nanowires (which embeds the investigated IFGARD nanodiscs) facilitates the experimental differentiation between quantum confinement- and QCSE-induced emission energy shifts. Due to the IFGARD, both effects become independently adaptable. KW - Piezoelectricity KW - Quantum Confined Stark Effect KW - Nanophotonics KW - Semiconductor Nanostructures KW - Spontaneous Polarization PY - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-411013 UR - https://arxiv.org/abs/1707.06882 SN - 2331-8422 IS - arXiv:1707.06882 SP - 1 EP - 9 PB - Cornell University CY - Ithaca, NY AN - OPUS4-41101 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -